| Kanij T |
A comparative study on subspace detection techniques for hyperspectral image classification |
Tasnim A, Sayeed A, Kanij T |
https://doi.org/10.36334/modsim2025.D01.tasnim |
https://mssanz.org.au/modsim2025/files/D01.tasnim.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
K |
| Sayeed A |
A comparative study on subspace detection techniques for hyperspectral image classification |
Tasnim A, Sayeed A, Kanij T |
https://doi.org/10.36334/modsim2025.D01.tasnim |
https://mssanz.org.au/modsim2025/files/D01.tasnim.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
S |
| Tasnim A |
A comparative study on subspace detection techniques for hyperspectral image classification |
Tasnim A, Sayeed A, Kanij T |
https://doi.org/10.36334/modsim2025.D01.tasnim |
https://mssanz.org.au/modsim2025/files/D01.tasnim.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
T |
| Cherampatta Mana S |
A comparison of monthly runoff models for their performance under variable climate regimes within Australia |
Cherampatta Mana S, Peterson TJ, Croke B, Iwanaga T, Purves T, Lade SJ |
https://doi.org/10.36334/modsim2025.K04.cherampattamana |
https://mssanz.org.au/modsim2025/files/K04.cherampattamana.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
C |
| Croke B |
A comparison of monthly runoff models for their performance under variable climate regimes within Australia |
Cherampatta Mana S, Peterson TJ, Croke B, Iwanaga T, Purves T, Lade SJ |
https://doi.org/10.36334/modsim2025.K04.cherampattamana |
https://mssanz.org.au/modsim2025/files/K04.cherampattamana.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
C |
| Iwanaga T |
A comparison of monthly runoff models for their performance under variable climate regimes within Australia |
Cherampatta Mana S, Peterson TJ, Croke B, Iwanaga T, Purves T, Lade SJ |
https://doi.org/10.36334/modsim2025.K04.cherampattamana |
https://mssanz.org.au/modsim2025/files/K04.cherampattamana.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
I |
| Lade SJ |
A comparison of monthly runoff models for their performance under variable climate regimes within Australia |
Cherampatta Mana S, Peterson TJ, Croke B, Iwanaga T, Purves T, Lade SJ |
https://doi.org/10.36334/modsim2025.K04.cherampattamana |
https://mssanz.org.au/modsim2025/files/K04.cherampattamana.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
L |
| Peterson TJ |
A comparison of monthly runoff models for their performance under variable climate regimes within Australia |
Cherampatta Mana S, Peterson TJ, Croke B, Iwanaga T, Purves T, Lade SJ |
https://doi.org/10.36334/modsim2025.K04.cherampattamana |
https://mssanz.org.au/modsim2025/files/K04.cherampattamana.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
P |
| Purves T |
A comparison of monthly runoff models for their performance under variable climate regimes within Australia |
Cherampatta Mana S, Peterson TJ, Croke B, Iwanaga T, Purves T, Lade SJ |
https://doi.org/10.36334/modsim2025.K04.cherampattamana |
https://mssanz.org.au/modsim2025/files/K04.cherampattamana.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
P |
| Evans JP |
A CORDEX Flagship pilot study for simulating island climates in the Pacific (IC-Pac) |
Evans JP, Menkes C |
https://doi.org/10.36334/modsim2025.G04.evans |
https://mssanz.org.au/modsim2025/files/G04.evans.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
E |
| Menkes C |
A CORDEX Flagship pilot study for simulating island climates in the Pacific (IC-Pac) |
Evans JP, Menkes C |
https://doi.org/10.36334/modsim2025.G04.evans |
https://mssanz.org.au/modsim2025/files/G04.evans.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
M |
| Hasan MF |
A CUDA-optimised key frame extraction for biometric labelling in dairy cattle identification |
Hasan MF, Morse-McNabb EM |
https://doi.org/10.36334/modsim2025.M03.hasan |
https://mssanz.org.au/modsim2025/files/M03.hasan.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
H |
| Morse-McNabb EM |
A CUDA-optimised key frame extraction for biometric labelling in dairy cattle identification |
Hasan MF, Morse-McNabb EM |
https://doi.org/10.36334/modsim2025.M03.hasan |
https://mssanz.org.au/modsim2025/files/M03.hasan.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
M |
| Bayba D |
A foundational framework for generative simulation models: pathway to generative digital twins for supply chain (INVITED SPEAKER) |
Chotaliya S, Fowler J, Pedrielli G, Bayba D, Saini P, Yu K |
https://doi.org/10.36334/modsim2025.M02.chotaliya |
https://mssanz.org.au/modsim2025/files/M02.chotaliya.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
B |
| Chotaliya S |
A foundational framework for generative simulation models: pathway to generative digital twins for supply chain (INVITED SPEAKER) |
Chotaliya S, Fowler J, Pedrielli G, Bayba D, Saini P, Yu K |
https://doi.org/10.36334/modsim2025.M02.chotaliya |
https://mssanz.org.au/modsim2025/files/M02.chotaliya.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
C |
| Fowler J (John) |
A foundational framework for generative simulation models: pathway to generative digital twins for supply chain (INVITED SPEAKER) |
Chotaliya S, Fowler J, Pedrielli G, Bayba D, Saini P, Yu K |
https://doi.org/10.36334/modsim2025.M02.chotaliya |
https://mssanz.org.au/modsim2025/files/M02.chotaliya.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
F |
| Pedrielli G |
A foundational framework for generative simulation models: pathway to generative digital twins for supply chain (INVITED SPEAKER) |
Chotaliya S, Fowler J, Pedrielli G, Bayba D, Saini P, Yu K |
https://doi.org/10.36334/modsim2025.M02.chotaliya |
https://mssanz.org.au/modsim2025/files/M02.chotaliya.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
P |
| Saini P |
A foundational framework for generative simulation models: pathway to generative digital twins for supply chain (INVITED SPEAKER) |
Chotaliya S, Fowler J, Pedrielli G, Bayba D, Saini P, Yu K |
https://doi.org/10.36334/modsim2025.M02.chotaliya |
https://mssanz.org.au/modsim2025/files/M02.chotaliya.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
S |
| Yu K |
A foundational framework for generative simulation models: pathway to generative digital twins for supply chain (INVITED SPEAKER) |
Chotaliya S, Fowler J, Pedrielli G, Bayba D, Saini P, Yu K |
https://doi.org/10.36334/modsim2025.M02.chotaliya |
https://mssanz.org.au/modsim2025/files/M02.chotaliya.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
Y |
| Zhou M |
A hybrid decomposition and machine learning model for forecasting coastal chlorophyll-a and total nitrogen |
Zhu X, Zhou M |
https://doi.org/10.36334/modsim2025.K08.zhu |
https://mssanz.org.au/modsim2025/files/K08.zhu.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
Z |
| Zhu X |
A hybrid decomposition and machine learning model for forecasting coastal chlorophyll-a and total nitrogen |
Zhu X, Zhou M |
https://doi.org/10.36334/modsim2025.K08.zhu |
https://mssanz.org.au/modsim2025/files/K08.zhu.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
Z |
| Kulasiri D |
A hybrid feature selection framework: balancing information preservation and multicollinearity in biological datasets |
Mohajer S, Kulasiri D, Samarasinghe S |
https://doi.org/10.36334/modsim2025.F11.mohajer |
https://mssanz.org.au/modsim2025/files/F11.mohajer.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
K |
| Mohajer S |
A hybrid feature selection framework: balancing information preservation and multicollinearity in biological datasets |
Mohajer S, Kulasiri D, Samarasinghe S |
https://doi.org/10.36334/modsim2025.F11.mohajer |
https://mssanz.org.au/modsim2025/files/F11.mohajer.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
M |
| Samarasinghe S |
A hybrid feature selection framework: balancing information preservation and multicollinearity in biological datasets |
Mohajer S, Kulasiri D, Samarasinghe S |
https://doi.org/10.36334/modsim2025.F11.mohajer |
https://mssanz.org.au/modsim2025/files/F11.mohajer.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
S |
| Cao Y (Yifan) |
A hybrid machine learning–process-based model approach of simulating ammonia volatilization in rice paddies |
Cao Y, Pan B, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.B08.cao |
https://mssanz.org.au/modsim2025/files/B08.cao.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
C |
| Chen D (Deli) |
A hybrid machine learning–process-based model approach of simulating ammonia volatilization in rice paddies |
Cao Y, Pan B, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.B08.cao |
https://mssanz.org.au/modsim2025/files/B08.cao.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
C |
| Lam SK (Shu Kee) |
A hybrid machine learning–process-based model approach of simulating ammonia volatilization in rice paddies |
Cao Y, Pan B, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.B08.cao |
https://mssanz.org.au/modsim2025/files/B08.cao.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
L |
| Pan B (Baobao) |
A hybrid machine learning–process-based model approach of simulating ammonia volatilization in rice paddies |
Cao Y, Pan B, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.B08.cao |
https://mssanz.org.au/modsim2025/files/B08.cao.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
P |
| Chandra R |
A hybrid quantile deep learning ensemble framework catering to streamflow uncertainty and extreme events |
Kapoor A, Marshall L, Pathiraja S, Chandra R |
https://doi.org/10.36334/modsim2025.C07.kapoor |
https://mssanz.org.au/modsim2025/files/C07.kapoor.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
C |
| Kapoor A |
A hybrid quantile deep learning ensemble framework catering to streamflow uncertainty and extreme events |
Kapoor A, Marshall L, Pathiraja S, Chandra R |
https://doi.org/10.36334/modsim2025.C07.kapoor |
https://mssanz.org.au/modsim2025/files/C07.kapoor.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
K |
| Marshall L |
A hybrid quantile deep learning ensemble framework catering to streamflow uncertainty and extreme events |
Kapoor A, Marshall L, Pathiraja S, Chandra R |
https://doi.org/10.36334/modsim2025.C07.kapoor |
https://mssanz.org.au/modsim2025/files/C07.kapoor.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
M |
| Pathiraja S |
A hybrid quantile deep learning ensemble framework catering to streamflow uncertainty and extreme events |
Kapoor A, Marshall L, Pathiraja S, Chandra R |
https://doi.org/10.36334/modsim2025.C07.kapoor |
https://mssanz.org.au/modsim2025/files/C07.kapoor.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
P |
| Chan F |
A LASSO-based approach to wage spillover |
Chan F, Harris M, Singh R, Yeo WE |
https://doi.org/10.36334/modsim2025.D01.chanf |
https://mssanz.org.au/modsim2025/files/D01.chanf.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
C |
| Harris M |
A LASSO-based approach to wage spillover |
Chan F, Harris M, Singh R, Yeo WE |
https://doi.org/10.36334/modsim2025.D01.chanf |
https://mssanz.org.au/modsim2025/files/D01.chanf.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
H |
| Singh R |
A LASSO-based approach to wage spillover |
Chan F, Harris M, Singh R, Yeo WE |
https://doi.org/10.36334/modsim2025.D01.chanf |
https://mssanz.org.au/modsim2025/files/D01.chanf.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
S |
| Yeo WE |
A LASSO-based approach to wage spillover |
Chan F, Harris M, Singh R, Yeo WE |
https://doi.org/10.36334/modsim2025.D01.chanf |
https://mssanz.org.au/modsim2025/files/D01.chanf.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
Y |
| Jiang Z (Ze) |
A machine learning framework to enhance long-term drought forecast with spectrally transformed climate predictors |
Zhang L, Jiang Z, Johnson B, Sharma A |
https://doi.org/10.36334/modsim2025.J06.zhang |
https://mssanz.org.au/modsim2025/files/J06.zhang.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
J |
| Johnson B |
A machine learning framework to enhance long-term drought forecast with spectrally transformed climate predictors |
Zhang L, Jiang Z, Johnson B, Sharma A |
https://doi.org/10.36334/modsim2025.J06.zhang |
https://mssanz.org.au/modsim2025/files/J06.zhang.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
J |
| Sharma A |
A machine learning framework to enhance long-term drought forecast with spectrally transformed climate predictors |
Zhang L, Jiang Z, Johnson B, Sharma A |
https://doi.org/10.36334/modsim2025.J06.zhang |
https://mssanz.org.au/modsim2025/files/J06.zhang.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
S |
| Zhang L (Liangjing) |
A machine learning framework to enhance long-term drought forecast with spectrally transformed climate predictors |
Zhang L, Jiang Z, Johnson B, Sharma A |
https://doi.org/10.36334/modsim2025.J06.zhang |
https://mssanz.org.au/modsim2025/files/J06.zhang.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
Z |
| Strauch M |
A model workflow for land use planning, optimising water re-use and nutrient retention |
Wittekind CIH, Strauch M, Witing F, Volk M |
https://doi.org/10.36334/modsim2025.F07.wittekind |
https://mssanz.org.au/modsim2025/files/F07.wittekind.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
S |
| Volk M |
A model workflow for land use planning, optimising water re-use and nutrient retention |
Wittekind CIH, Strauch M, Witing F, Volk M |
https://doi.org/10.36334/modsim2025.F07.wittekind |
https://mssanz.org.au/modsim2025/files/F07.wittekind.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
V |
| Witing F |
A model workflow for land use planning, optimising water re-use and nutrient retention |
Wittekind CIH, Strauch M, Witing F, Volk M |
https://doi.org/10.36334/modsim2025.F07.wittekind |
https://mssanz.org.au/modsim2025/files/F07.wittekind.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
W |
| Wittekind CIH |
A model workflow for land use planning, optimising water re-use and nutrient retention |
Wittekind CIH, Strauch M, Witing F, Volk M |
https://doi.org/10.36334/modsim2025.F07.wittekind |
https://mssanz.org.au/modsim2025/files/F07.wittekind.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
W |
| Ano K |
A modified multilevel Monte Carlo method and its numerical performance |
Inui H, Kurushima A, Ano K |
https://doi.org/10.36334/modsim2025.A01.inui |
https://mssanz.org.au/modsim2025/files/A01.inui.pdf |
A |
Applied and computational mathematics |
A1 |
Applied Probability |
A |
| Inui H |
A modified multilevel Monte Carlo method and its numerical performance |
Inui H, Kurushima A, Ano K |
https://doi.org/10.36334/modsim2025.A01.inui |
https://mssanz.org.au/modsim2025/files/A01.inui.pdf |
A |
Applied and computational mathematics |
A1 |
Applied Probability |
I |
| Kurushima A |
A modified multilevel Monte Carlo method and its numerical performance |
Inui H, Kurushima A, Ano K |
https://doi.org/10.36334/modsim2025.A01.inui |
https://mssanz.org.au/modsim2025/files/A01.inui.pdf |
A |
Applied and computational mathematics |
A1 |
Applied Probability |
K |
| Aryal S |
A multi-index assessment of climate variability and agricultural drought in Afghanistan using station-observed historical data |
Wahid S, Bhattarai U, Chen Y, Taylor P, Karim F, Penton DJ, Aryal S |
https://doi.org/10.36334/modsim2025.K03.wahid |
https://mssanz.org.au/modsim2025/files/K03.wahid.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
A |
| Bhattarai U |
A multi-index assessment of climate variability and agricultural drought in Afghanistan using station-observed historical data |
Wahid S, Bhattarai U, Chen Y, Taylor P, Karim F, Penton DJ, Aryal S |
https://doi.org/10.36334/modsim2025.K03.wahid |
https://mssanz.org.au/modsim2025/files/K03.wahid.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
B |
| Chen Y (Yun) |
A multi-index assessment of climate variability and agricultural drought in Afghanistan using station-observed historical data |
Wahid S, Bhattarai U, Chen Y, Taylor P, Karim F, Penton DJ, Aryal S |
https://doi.org/10.36334/modsim2025.K03.wahid |
https://mssanz.org.au/modsim2025/files/K03.wahid.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
C |
| Karim F |
A multi-index assessment of climate variability and agricultural drought in Afghanistan using station-observed historical data |
Wahid S, Bhattarai U, Chen Y, Taylor P, Karim F, Penton DJ, Aryal S |
https://doi.org/10.36334/modsim2025.K03.wahid |
https://mssanz.org.au/modsim2025/files/K03.wahid.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
K |
| Penton DJ |
A multi-index assessment of climate variability and agricultural drought in Afghanistan using station-observed historical data |
Wahid S, Bhattarai U, Chen Y, Taylor P, Karim F, Penton DJ, Aryal S |
https://doi.org/10.36334/modsim2025.K03.wahid |
https://mssanz.org.au/modsim2025/files/K03.wahid.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
P |
| Taylor P |
A multi-index assessment of climate variability and agricultural drought in Afghanistan using station-observed historical data |
Wahid S, Bhattarai U, Chen Y, Taylor P, Karim F, Penton DJ, Aryal S |
https://doi.org/10.36334/modsim2025.K03.wahid |
https://mssanz.org.au/modsim2025/files/K03.wahid.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
T |
| Wahid S |
A multi-index assessment of climate variability and agricultural drought in Afghanistan using station-observed historical data |
Wahid S, Bhattarai U, Chen Y, Taylor P, Karim F, Penton DJ, Aryal S |
https://doi.org/10.36334/modsim2025.K03.wahid |
https://mssanz.org.au/modsim2025/files/K03.wahid.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
W |
| Baum M |
A multi-scale modelling framework for assessing environmental impacts of pumped hydro energy storage |
de Groot A, Weber T, Egger F, Baum M |
https://doi.org/10.36334/modsim2025.L02.degroot |
https://mssanz.org.au/modsim2025/files/L02.degroot.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
B |
| de Groot A |
A multi-scale modelling framework for assessing environmental impacts of pumped hydro energy storage |
de Groot L, van der Linden M |
https://doi.org/10.36334/modsim2025.L02.degroot |
https://mssanz.org.au/modsim2025/files/L02.degroot.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
d |
| Egger F |
A multi-scale modelling framework for assessing environmental impacts of pumped hydro energy storage |
https://doi.org/10.36334/modsim.2025.L02.deGroot |
https://doi.org/10.36334/modsim2025.L02.degroot |
https://mssanz.org.au/modsim2025/files/L02.degroot.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
E |
| Weber T |
A multi-scale modelling framework for assessing environmental impacts of pumped hydro energy storage |
de Groot L, van der Linden M |
https://doi.org/10.36334/modsim2025.L02.degroot |
https://mssanz.org.au/modsim2025/files/L02.degroot.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
W |
| Juniper JA |
A multisectoral bio-physical Stock-Flow-Consistent input-output macroeconomic modelling analysis for Australian transition to low-emission energy |
Khandoker T, Juniper JA, Reedman LJ |
https://doi.org/10.36334/modsim2025.E03.khandoker |
https://mssanz.org.au/modsim2025/files/E03.khandoker.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
J |
| Khandoker T |
A multisectoral bio-physical Stock-Flow-Consistent input-output macroeconomic modelling analysis for Australian transition to low-emission energy |
Khandoker T, Juniper JA, Reedman LJ |
https://doi.org/10.36334/modsim2025.E03.khandoker |
https://mssanz.org.au/modsim2025/files/E03.khandoker.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
K |
| Reedman LJ |
A multisectoral bio-physical Stock-Flow-Consistent input-output macroeconomic modelling analysis for Australian transition to low-emission energy |
Khandoker T, Juniper JA, Reedman LJ |
https://doi.org/10.36334/modsim2025.E03.khandoker |
https://mssanz.org.au/modsim2025/files/E03.khandoker.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
R |
| Guo D (Danlu) |
A new metric for better identifying and understanding rainfall-runoff events |
Khoie MMM, Guo D, Wasko C |
https://doi.org/10.36334/modsim2025.K07.khoie |
https://mssanz.org.au/modsim2025/files/K07.khoie.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
G |
| Khoie MMM |
A new metric for better identifying and understanding rainfall-runoff events |
Khoie MMM, Guo D, Wasko C |
https://doi.org/10.36334/modsim2025.K07.khoie |
https://mssanz.org.au/modsim2025/files/K07.khoie.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
K |
| Wasko C |
A new metric for better identifying and understanding rainfall-runoff events |
Khoie MMM, Guo D, Wasko C |
https://doi.org/10.36334/modsim2025.K07.khoie |
https://mssanz.org.au/modsim2025/files/K07.khoie.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
W |
| Guan H |
A new physics-guided deep learning model for improving plant transpiration estimation under water-limited conditions |
Liu B, Guan H |
https://doi.org/10.36334/modsim2025.J10.liu |
https://mssanz.org.au/modsim2025/files/J10.liu.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
G |
| Liu B |
A new physics-guided deep learning model for improving plant transpiration estimation under water-limited conditions |
Liu B, Guan H |
https://doi.org/10.36334/modsim2025.J10.liu |
https://mssanz.org.au/modsim2025/files/J10.liu.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
L |
| Evans JP |
A next-generation tool for bias-correcting RCM inputs to enhance regional climate projections |
Kim Y, Evans JP |
https://doi.org/10.36334/modsim2025.G04.kim |
https://mssanz.org.au/modsim2025/files/G04.kim.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
E |
| Kim Y (Youngil) |
A next-generation tool for bias-correcting RCM inputs to enhance regional climate projections |
Kim Y, Evans JP |
https://doi.org/10.36334/modsim2025.G04.kim |
https://mssanz.org.au/modsim2025/files/G04.kim.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
K |
| Zhao C (Chenguang) |
A novel deep learning model for post-processing of short- and medium-term daily precipitation forecasts |
Zhao C |
https://doi.org/10.36334/modsim2025.K06.zhao |
https://mssanz.org.au/modsim2025/files/K06.zhao.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
Z |
| Beecham R |
A novel framework for estimating probable maximum tropical cyclone with sparse records |
Dutta K, Beecham R, Gan R |
https://doi.org/10.36334/modsim2025.K07.dutta |
https://mssanz.org.au/modsim2025/files/K07.dutta.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
B |
| Dutta K |
A novel framework for estimating probable maximum tropical cyclone with sparse records |
Dutta K, Beecham R, Gan R |
https://doi.org/10.36334/modsim2025.K07.dutta |
https://mssanz.org.au/modsim2025/files/K07.dutta.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
D |
| Gan R |
A novel framework for estimating probable maximum tropical cyclone with sparse records |
Dutta K, Beecham R, Gan R |
https://doi.org/10.36334/modsim2025.K07.dutta |
https://mssanz.org.au/modsim2025/files/K07.dutta.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
G |
| Bentley A |
A paradigm shift in nitrogen management: In-silico insights into biological nitrification inhibition in farming systems |
Garba I, Buss W, Wang E, O’Sullivan C, Gupta V, Bentley A, Verburg K |
https://doi.org/10.36334/modsim2025.B03.garba |
https://mssanz.org.au/modsim2025/files/B03.garba.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
B |
| Buss W |
A paradigm shift in nitrogen management: In-silico insights into biological nitrification inhibition in farming systems |
Garba I, Buss W, Wang E, O’Sullivan C, Gupta V, Bentley A, Verburg K |
https://doi.org/10.36334/modsim2025.B03.garba |
https://mssanz.org.au/modsim2025/files/B03.garba.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
B |
| Garba II |
A paradigm shift in nitrogen management: In-silico insights into biological nitrification inhibition in farming systems |
Garba I, Buss W, Wang E, O’Sullivan C, Gupta V, Bentley A, Verburg K |
https://doi.org/10.36334/modsim2025.B03.garba |
https://mssanz.org.au/modsim2025/files/B03.garba.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
G |
| Gupta V |
A paradigm shift in nitrogen management: In-silico insights into biological nitrification inhibition in farming systems |
Garba I, Buss W, Wang E, O’Sullivan C, Gupta V, Bentley A, Verburg K |
https://doi.org/10.36334/modsim2025.B03.garba |
https://mssanz.org.au/modsim2025/files/B03.garba.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
G |
| O’Sullivan C |
A paradigm shift in nitrogen management: In-silico insights into biological nitrification inhibition in farming systems |
Garba I, Buss W, Wang E, O’Sullivan C, Gupta V, Bentley A, Verburg K |
https://doi.org/10.36334/modsim2025.B03.garba |
https://mssanz.org.au/modsim2025/files/B03.garba.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
O |
| Verburg K |
A paradigm shift in nitrogen management: In-silico insights into biological nitrification inhibition in farming systems |
Garba I, Buss W, Wang E, O’Sullivan C, Gupta V, Bentley A, Verburg K |
https://doi.org/10.36334/modsim2025.B03.garba |
https://mssanz.org.au/modsim2025/files/B03.garba.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
V |
| Wang E (Enli) |
A paradigm shift in nitrogen management: In-silico insights into biological nitrification inhibition in farming systems |
Garba I, Buss W, Wang E, O’Sullivan C, Gupta V, Bentley A, Verburg K |
https://doi.org/10.36334/modsim2025.B03.garba |
https://mssanz.org.au/modsim2025/files/B03.garba.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
W |
| Dunstall M |
A practical approach to electricity network hardening decisions |
Dunstall M, Nelson T, Nolan T |
https://doi.org/10.36334/modsim2025.M01.dunstall |
https://mssanz.org.au/modsim2025/files/M01.dunstall.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
D |
| Nelson T |
A practical approach to electricity network hardening decisions |
Dunstall M, Nelson T, Nolan T |
https://doi.org/10.36334/modsim2025.M01.dunstall |
https://mssanz.org.au/modsim2025/files/M01.dunstall.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
N |
| Nolan T |
A practical approach to electricity network hardening decisions |
Dunstall M, Nelson T, Nolan T |
https://doi.org/10.36334/modsim2025.M01.dunstall |
https://mssanz.org.au/modsim2025/files/M01.dunstall.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
N |
| Randall LJ |
A preliminary erosion model for gullies with complex geometries |
Randall LJ |
https://doi.org/10.36334/modsim2025.L04.randall |
https://mssanz.org.au/modsim2025/files/L04.randall.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
R |
| Amellina A |
A prototype Earth System Impact score for businesses and investors |
Lade SJ, Amellina A, Chaudhary N, Crona B, Fetzer I, Gotangco Gonzales CK, Marone D, Parlato G, Rocha J, Vu J, Wang Erlandsson L, Zoller H |
https://doi.org/10.36334/modsim2025.D02.lade |
https://mssanz.org.au/modsim2025/files/D02.lade.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
A |
| Chaudhary N |
A prototype Earth System Impact score for businesses and investors |
Lade SJ, Amellina A, Chaudhary N, Crona B, Fetzer I, Gotangco Gonzales CK, Marone D, Parlato G, Rocha J, Vu J, Wang Erlandsson L, Zoller H |
https://doi.org/10.36334/modsim2025.D02.lade |
https://mssanz.org.au/modsim2025/files/D02.lade.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
C |
| Crona B |
A prototype Earth System Impact score for businesses and investors |
Lade SJ, Amellina A, Chaudhary N, Crona B, Fetzer I, Gotangco Gonzales CK, Marone D, Parlato G, Rocha J, Vu J, Wang Erlandsson L, Zoller H |
https://doi.org/10.36334/modsim2025.D02.lade |
https://mssanz.org.au/modsim2025/files/D02.lade.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
C |
| Fetzer I |
A prototype Earth System Impact score for businesses and investors |
Lade SJ, Amellina A, Chaudhary N, Crona B, Fetzer I, Gotangco Gonzales CK, Marone D, Parlato G, Rocha J, Vu J, Wang Erlandsson L, Zoller H |
https://doi.org/10.36334/modsim2025.D02.lade |
https://mssanz.org.au/modsim2025/files/D02.lade.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
F |
| Gotangco Gonzales CK |
A prototype Earth System Impact score for businesses and investors |
Lade SJ, Amellina A, Chaudhary N, Crona B, Fetzer I, Gotangco Gonzales CK, Marone D, Parlato G, Rocha J, Vu J, Wang Erlandsson L, Zoller H |
https://doi.org/10.36334/modsim2025.D02.lade |
https://mssanz.org.au/modsim2025/files/D02.lade.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
G |
| Lade SJ |
A prototype Earth System Impact score for businesses and investors |
Lade SJ, Amellina A, Chaudhary N, Crona B, Fetzer I, Gotangco Gonzales CK, Marone D, Parlato G, Rocha J, Vu J, Wang Erlandsson L, Zoller H |
https://doi.org/10.36334/modsim2025.D02.lade |
https://mssanz.org.au/modsim2025/files/D02.lade.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
L |
| Marone D |
A prototype Earth System Impact score for businesses and investors |
Lade SJ, Amellina A, Chaudhary N, Crona B, Fetzer I, Gotangco Gonzales CK, Marone D, Parlato G, Rocha J, Vu J, Wang Erlandsson L, Zoller H |
https://doi.org/10.36334/modsim2025.D02.lade |
https://mssanz.org.au/modsim2025/files/D02.lade.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
M |
| Parlato G |
A prototype Earth System Impact score for businesses and investors |
Lade SJ, Amellina A, Chaudhary N, Crona B, Fetzer I, Gotangco Gonzales CK, Marone D, Parlato G, Rocha J, Vu J, Wang Erlandsson L, Zoller H |
https://doi.org/10.36334/modsim2025.D02.lade |
https://mssanz.org.au/modsim2025/files/D02.lade.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
P |
| Rocha J |
A prototype Earth System Impact score for businesses and investors |
Lade SJ, Amellina A, Chaudhary N, Crona B, Fetzer I, Gotangco Gonzales CK, Marone D, Parlato G, Rocha J, Vu J, Wang Erlandsson L, Zoller H |
https://doi.org/10.36334/modsim2025.D02.lade |
https://mssanz.org.au/modsim2025/files/D02.lade.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
R |
| Vu J |
A prototype Earth System Impact score for businesses and investors |
Lade SJ, Amellina A, Chaudhary N, Crona B, Fetzer I, Gotangco Gonzales CK, Marone D, Parlato G, Rocha J, Vu J, Wang Erlandsson L, Zoller H |
https://doi.org/10.36334/modsim2025.D02.lade |
https://mssanz.org.au/modsim2025/files/D02.lade.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
V |
| Wang Erlandsson L |
A prototype Earth System Impact score for businesses and investors |
Lade SJ, Amellina A, Chaudhary N, Crona B, Fetzer I, Gotangco Gonzales CK, Marone D, Parlato G, Rocha J, Vu J, Wang Erlandsson L, Zoller H |
https://doi.org/10.36334/modsim2025.D02.lade |
https://mssanz.org.au/modsim2025/files/D02.lade.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
W |
| Zoller H |
A prototype Earth System Impact score for businesses and investors |
Lade SJ, Amellina A, Chaudhary N, Crona B, Fetzer I, Gotangco Gonzales CK, Marone D, Parlato G, Rocha J, Vu J, Wang Erlandsson L, Zoller H |
https://doi.org/10.36334/modsim2025.D02.lade |
https://mssanz.org.au/modsim2025/files/D02.lade.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
Z |
| Jovanoski Z |
A Random Forest analysis of variables influencing pyrocumulonimbus (pyroCb) occurrence over temperate southeast Australia |
Ma W, Sharples JJ, Jovanoski Z |
https://doi.org/10.36334/modsim2025.G08.ma |
https://mssanz.org.au/modsim2025/files/G08.ma.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
J |
| Ma W |
A Random Forest analysis of variables influencing pyrocumulonimbus (pyroCb) occurrence over temperate southeast Australia |
Ma W, Sharples JJ, Jovanoski Z |
https://doi.org/10.36334/modsim2025.G08.ma |
https://mssanz.org.au/modsim2025/files/G08.ma.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
M |
| Sharples JJ |
A Random Forest analysis of variables influencing pyrocumulonimbus (pyroCb) occurrence over temperate southeast Australia |
Ma W, Sharples JJ, Jovanoski Z |
https://doi.org/10.36334/modsim2025.G08.ma |
https://mssanz.org.au/modsim2025/files/G08.ma.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
S |
| Blackstock KL |
A return to decision support: How can decision support tools be used at the science-policy interface? |
Matthews KB, Wardell-Johnson DH, Miller DG, Tavana M, Whitaker J, Blackstock KL |
https://doi.org/10.36334/modsim2025.F05.matthews |
https://mssanz.org.au/modsim2025/files/F05.matthews.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
B |
| Matthews KB |
A return to decision support: How can decision support tools be used at the science-policy interface? |
Matthews KB, Wardell-Johnson DH, Miller DG, Tavana M, Whitaker J, Blackstock KL |
https://doi.org/10.36334/modsim2025.F05.matthews |
https://mssanz.org.au/modsim2025/files/F05.matthews.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
M |
| Miller DG |
A return to decision support: How can decision support tools be used at the science-policy interface? |
Matthews KB, Wardell-Johnson DH, Miller DG, Tavana M, Whitaker J, Blackstock KL |
https://doi.org/10.36334/modsim2025.F05.matthews |
https://mssanz.org.au/modsim2025/files/F05.matthews.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
M |
| Tavana M |
A return to decision support: How can decision support tools be used at the science-policy interface? |
Matthews KB, Wardell-Johnson DH, Miller DG, Tavana M, Whitaker J, Blackstock KL |
https://doi.org/10.36334/modsim2025.F05.matthews |
https://mssanz.org.au/modsim2025/files/F05.matthews.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
T |
| Wardell-Johnson DH |
A return to decision support: How can decision support tools be used at the science-policy interface? |
Matthews KB, Wardell-Johnson DH, Miller DG, Tavana M, Whitaker J, Blackstock KL |
https://doi.org/10.36334/modsim2025.F05.matthews |
https://mssanz.org.au/modsim2025/files/F05.matthews.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
W |
| Whitaker J |
A return to decision support: How can decision support tools be used at the science-policy interface? |
Matthews KB, Wardell-Johnson DH, Miller DG, Tavana M, Whitaker J, Blackstock KL |
https://doi.org/10.36334/modsim2025.F05.matthews |
https://mssanz.org.au/modsim2025/files/F05.matthews.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
W |
| Hai F |
A sensitivity analysis of the Activated Sludge process in a single reactor configuration |
Watt S, Nelson M, Hai F, Sidhu H |
https://doi.org/10.36334/modsim2025.A06.watt |
https://mssanz.org.au/modsim2025/files/A06.watt.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
H |
| Nelson M |
A sensitivity analysis of the Activated Sludge process in a single reactor configuration |
Watt S, Nelson M, Hai F, Sidhu H |
https://doi.org/10.36334/modsim2025.A06.watt |
https://mssanz.org.au/modsim2025/files/A06.watt.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
N |
| Sidhu H |
A sensitivity analysis of the Activated Sludge process in a single reactor configuration |
Watt S, Nelson M, Hai F, Sidhu H |
https://doi.org/10.36334/modsim2025.A06.watt |
https://mssanz.org.au/modsim2025/files/A06.watt.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
S |
| Watt S |
A sensitivity analysis of the Activated Sludge process in a single reactor configuration |
Watt S, Nelson M, Hai F, Sidhu H |
https://doi.org/10.36334/modsim2025.A06.watt |
https://mssanz.org.au/modsim2025/files/A06.watt.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
W |
| Brinsmead T |
A simplified electricity system model for exploring least cost generation mixes (INVITED SPEAKER) |
Graham P, Foster J, Mediwaththe C, Green D, Brinsmead T |
https://doi.org/10.36334/modsim2025.E03.grahamp |
https://mssanz.org.au/modsim2025/files/E03.grahamp.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
B |
| Foster J |
A simplified electricity system model for exploring least cost generation mixes (INVITED SPEAKER) |
Graham P, Foster J, Mediwaththe C, Green D, Brinsmead T |
https://doi.org/10.36334/modsim2025.E03.grahamp |
https://mssanz.org.au/modsim2025/files/E03.grahamp.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
F |
| Graham P |
A simplified electricity system model for exploring least cost generation mixes (INVITED SPEAKER) |
Graham P, Foster J, Mediwaththe C, Green D, Brinsmead T |
https://doi.org/10.36334/modsim2025.E03.grahamp |
https://mssanz.org.au/modsim2025/files/E03.grahamp.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
G |
| Green D |
A simplified electricity system model for exploring least cost generation mixes (INVITED SPEAKER) |
Graham P, Foster J, Mediwaththe C, Green D, Brinsmead T |
https://doi.org/10.36334/modsim2025.E03.grahamp |
https://mssanz.org.au/modsim2025/files/E03.grahamp.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
G |
| Mediwaththe C |
A simplified electricity system model for exploring least cost generation mixes (INVITED SPEAKER) |
Graham P, Foster J, Mediwaththe C, Green D, Brinsmead T |
https://doi.org/10.36334/modsim2025.E03.grahamp |
https://mssanz.org.au/modsim2025/files/E03.grahamp.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
M |
| Beller K |
A spatio-stochastic SEIR model of the 1789 smallpox epidemic in Dharawal Country |
Nitschke MC, Williams AN, Ingrey SD, Griffiths B, Beller K, Irish P, Saltre F, Bradshaw CJA |
https://doi.org/10.36334/modsim2025.I05.nitschke |
https://mssanz.org.au/modsim2025/files/I05.nitschke.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I5 |
Indigenous Modelling and Participatory Approaches |
B |
| Bradshaw CJA |
A spatio-stochastic SEIR model of the 1789 smallpox epidemic in Dharawal Country |
Nitschke MC, Williams AN, Ingrey SD, Griffiths B, Beller K, Irish P, Saltre F, Bradshaw CJA |
https://doi.org/10.36334/modsim2025.I05.nitschke |
https://mssanz.org.au/modsim2025/files/I05.nitschke.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I5 |
Indigenous Modelling and Participatory Approaches |
B |
| Griffiths B |
A spatio-stochastic SEIR model of the 1789 smallpox epidemic in Dharawal Country |
Nitschke MC, Williams AN, Ingrey SD, Griffiths B, Beller K, Irish P, Saltre F, Bradshaw CJA |
https://doi.org/10.36334/modsim2025.I05.nitschke |
https://mssanz.org.au/modsim2025/files/I05.nitschke.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I5 |
Indigenous Modelling and Participatory Approaches |
G |
| Ingrey SD |
A spatio-stochastic SEIR model of the 1789 smallpox epidemic in Dharawal Country |
Nitschke MC, Williams AN, Ingrey SD, Griffiths B, Beller K, Irish P, Saltre F, Bradshaw CJA |
https://doi.org/10.36334/modsim2025.I05.nitschke |
https://mssanz.org.au/modsim2025/files/I05.nitschke.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I5 |
Indigenous Modelling and Participatory Approaches |
I |
| Irish P |
A spatio-stochastic SEIR model of the 1789 smallpox epidemic in Dharawal Country |
Nitschke MC, Williams AN, Ingrey SD, Griffiths B, Beller K, Irish P, Saltre F, Bradshaw CJA |
https://doi.org/10.36334/modsim2025.I05.nitschke |
https://mssanz.org.au/modsim2025/files/I05.nitschke.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I5 |
Indigenous Modelling and Participatory Approaches |
I |
| Nitschke MC |
A spatio-stochastic SEIR model of the 1789 smallpox epidemic in Dharawal Country |
Nitschke MC, Williams AN, Ingrey SD, Griffiths B, Beller K, Irish P, Saltre F, Bradshaw CJA |
https://doi.org/10.36334/modsim2025.I05.nitschke |
https://mssanz.org.au/modsim2025/files/I05.nitschke.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I5 |
Indigenous Modelling and Participatory Approaches |
N |
| Saltre F |
A spatio-stochastic SEIR model of the 1789 smallpox epidemic in Dharawal Country |
Nitschke MC, Williams AN, Ingrey SD, Griffiths B, Beller K, Irish P, Saltre F, Bradshaw CJA |
https://doi.org/10.36334/modsim2025.I05.nitschke |
https://mssanz.org.au/modsim2025/files/I05.nitschke.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I5 |
Indigenous Modelling and Participatory Approaches |
S |
| Williams AN |
A spatio-stochastic SEIR model of the 1789 smallpox epidemic in Dharawal Country |
Nitschke MC, Williams AN, Ingrey SD, Griffiths B, Beller K, Irish P, Saltre F, Bradshaw CJA |
https://doi.org/10.36334/modsim2025.I05.nitschke |
https://mssanz.org.au/modsim2025/files/I05.nitschke.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I5 |
Indigenous Modelling and Participatory Approaches |
W |
| Bell ST |
A state-variable based approach to model integration in a horticultural modelling platform |
Bell ST, Zhu J, Cichota R, Jenkins H, Liu D, Chuang OA, Zhang J, Van Houtte C, Tang J, Cerecke C, Lin HT |
https://doi.org/10.36334/modsim2025.F07.bell |
https://mssanz.org.au/modsim2025/files/F07.bell.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
B |
| Cerecke C |
A state-variable based approach to model integration in a horticultural modelling platform |
Bell ST, Zhu J, Cichota R, Jenkins H, Liu D, Chuang OA, Zhang J, Van Houtte C, Tang J, Cerecke C, Lin HT |
https://doi.org/10.36334/modsim2025.F07.bell |
https://mssanz.org.au/modsim2025/files/F07.bell.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
C |
| Chuang OA |
A state-variable based approach to model integration in a horticultural modelling platform |
Bell ST, Zhu J, Cichota R, Jenkins H, Liu D, Chuang OA, Zhang J, Van Houtte C, Tang J, Cerecke C, Lin HT |
https://doi.org/10.36334/modsim2025.F07.bell |
https://mssanz.org.au/modsim2025/files/F07.bell.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
C |
| Cichota R |
A state-variable based approach to model integration in a horticultural modelling platform |
Bell ST, Zhu J, Cichota R, Jenkins H, Liu D, Chuang OA, Zhang J, Van Houtte C, Tang J, Cerecke C, Lin HT |
https://doi.org/10.36334/modsim2025.F07.bell |
https://mssanz.org.au/modsim2025/files/F07.bell.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
C |
| Jenkins H |
A state-variable based approach to model integration in a horticultural modelling platform |
Bell ST, Zhu J, Cichota R, Jenkins H, Liu D, Chuang OA, Zhang J, Van Houtte C, Tang J, Cerecke C, Lin HT |
https://doi.org/10.36334/modsim2025.F07.bell |
https://mssanz.org.au/modsim2025/files/F07.bell.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
J |
| Lin HT |
A state-variable based approach to model integration in a horticultural modelling platform |
Bell ST, Zhu J, Cichota R, Jenkins H, Liu D, Chuang OA, Zhang J, Van Houtte C, Tang J, Cerecke C, Lin HT |
https://doi.org/10.36334/modsim2025.F07.bell |
https://mssanz.org.au/modsim2025/files/F07.bell.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
L |
| Liu D |
A state-variable based approach to model integration in a horticultural modelling platform |
Bell ST, Zhu J, Cichota R, Jenkins H, Liu D, Chuang OA, Zhang J, Van Houtte C, Tang J, Cerecke C, Lin HT |
https://doi.org/10.36334/modsim2025.F07.bell |
https://mssanz.org.au/modsim2025/files/F07.bell.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
L |
| Tang J |
A state-variable based approach to model integration in a horticultural modelling platform |
Bell ST, Zhu J, Cichota R, Jenkins H, Liu D, Chuang OA, Zhang J, Van Houtte C, Tang J, Cerecke C, Lin HT |
https://doi.org/10.36334/modsim2025.F07.bell |
https://mssanz.org.au/modsim2025/files/F07.bell.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
T |
| Van Houtte C |
A state-variable based approach to model integration in a horticultural modelling platform |
Bell ST, Zhu J, Cichota R, Jenkins H, Liu D, Chuang OA, Zhang J, Van Houtte C, Tang J, Cerecke C, Lin HT |
https://doi.org/10.36334/modsim2025.F07.bell |
https://mssanz.org.au/modsim2025/files/F07.bell.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
V |
| Zhang J |
A state-variable based approach to model integration in a horticultural modelling platform |
Bell ST, Zhu J, Cichota R, Jenkins H, Liu D, Chuang OA, Zhang J, Van Houtte C, Tang J, Cerecke C, Lin HT |
https://doi.org/10.36334/modsim2025.F07.bell |
https://mssanz.org.au/modsim2025/files/F07.bell.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
Z |
| Zhu J |
A state-variable based approach to model integration in a horticultural modelling platform |
Bell ST, Zhu J, Cichota R, Jenkins H, Liu D, Chuang OA, Zhang J, Van Houtte C, Tang J, Cerecke C, Lin HT |
https://doi.org/10.36334/modsim2025.F07.bell |
https://mssanz.org.au/modsim2025/files/F07.bell.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
Z |
| Gallant H |
A stochastic nonlinear model of influence in synchronisation dynamics |
Gallant H, Roberts D, Kalloniatis A |
https://doi.org/10.36334/modsim2025.I03.gallant |
https://mssanz.org.au/modsim2025/files/I03.gallant.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
G |
| Kalloniatis A |
A stochastic nonlinear model of influence in synchronisation dynamics |
Gallant H, Roberts D, Kalloniatis A |
https://doi.org/10.36334/modsim2025.I03.gallant |
https://mssanz.org.au/modsim2025/files/I03.gallant.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
K |
| Roberts D |
A stochastic nonlinear model of influence in synchronisation dynamics |
Gallant H, Roberts D, Kalloniatis A |
https://doi.org/10.36334/modsim2025.I03.gallant |
https://mssanz.org.au/modsim2025/files/I03.gallant.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
R |
| Hashemi Madani FS |
A structured framework for context-based selection of DMDU approaches in environmental water management |
Hashemi Madani FS, Horne A, John A |
https://doi.org/10.36334/modsim2025.J08.hashemimadani |
https://mssanz.org.au/modsim2025/files/J08.hashemimadani.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
H |
| Horne A |
A structured framework for context-based selection of DMDU approaches in environmental water management |
Hashemi Madani FS, Horne A, John A |
https://doi.org/10.36334/modsim2025.J08.hashemimadani |
https://mssanz.org.au/modsim2025/files/J08.hashemimadani.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
H |
| John A |
A structured framework for context-based selection of DMDU approaches in environmental water management |
Hashemi Madani FS, Horne A, John A |
https://doi.org/10.36334/modsim2025.J08.hashemimadani |
https://mssanz.org.au/modsim2025/files/J08.hashemimadani.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
J |
| Duo KQ |
A systematic review of quantitative models for African swine fever: Diversity across host and environmental drivers |
Ligue-Sabio KDB, Duo KQ, Nazarthy Y, Sartorius B, Kanamori LF, Sucol Y, Lau CL |
https://doi.org/10.36334/modsim2025.H04.liguesabio |
https://mssanz.org.au/modsim2025/files/H04.liguesabio.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
D |
| Kanamori LF |
A systematic review of quantitative models for African swine fever: Diversity across host and environmental drivers |
Ligue-Sabio KDB, Duo KQ, Nazarthy Y, Sartorius B, Kanamori LF, Sucol Y, Lau CL |
https://doi.org/10.36334/modsim2025.H04.liguesabio |
https://mssanz.org.au/modsim2025/files/H04.liguesabio.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
K |
| Lau CL |
A systematic review of quantitative models for African swine fever: Diversity across host and environmental drivers |
Ligue-Sabio KDB, Duo KQ, Nazarthy Y, Sartorius B, Kanamori LF, Sucol Y, Lau CL |
https://doi.org/10.36334/modsim2025.H04.liguesabio |
https://mssanz.org.au/modsim2025/files/H04.liguesabio.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
L |
| Ligue-Sabio KDB |
A systematic review of quantitative models for African swine fever: Diversity across host and environmental drivers |
Ligue-Sabio KDB, Duo KQ, Nazarthy Y, Sartorius B, Kanamori LF, Sucol Y, Lau CL |
https://doi.org/10.36334/modsim2025.H04.liguesabio |
https://mssanz.org.au/modsim2025/files/H04.liguesabio.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
L |
| Nazarthy Y |
A systematic review of quantitative models for African swine fever: Diversity across host and environmental drivers |
Ligue-Sabio KDB, Duo KQ, Nazarthy Y, Sartorius B, Kanamori LF, Sucol Y, Lau CL |
https://doi.org/10.36334/modsim2025.H04.liguesabio |
https://mssanz.org.au/modsim2025/files/H04.liguesabio.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
N |
| Sartorius B |
A systematic review of quantitative models for African swine fever: Diversity across host and environmental drivers |
Ligue-Sabio KDB, Duo KQ, Nazarthy Y, Sartorius B, Kanamori LF, Sucol Y, Lau CL |
https://doi.org/10.36334/modsim2025.H04.liguesabio |
https://mssanz.org.au/modsim2025/files/H04.liguesabio.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
S |
| Sucol Y |
A systematic review of quantitative models for African swine fever: Diversity across host and environmental drivers |
Ligue-Sabio KDB, Duo KQ, Nazarthy Y, Sartorius B, Kanamori LF, Sucol Y, Lau CL |
https://doi.org/10.36334/modsim2025.H04.liguesabio |
https://mssanz.org.au/modsim2025/files/H04.liguesabio.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
S |
| Young L |
A systems approach to quantifying experience in cross-functional collaboration to improve strategic thinking in the national intelligence community |
Young L |
https://doi.org/10.36334/modsim2025.M01.young |
https://mssanz.org.au/modsim2025/files/M01.young.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
Y |
| Khandoker T |
A system-wide Energy Return on Investment (EROI) approach to Australia’s renewables transition |
Lloyd‑Hurwitz B, Khandoker T, Reedman L |
https://doi.org/10.36334/modsim2025.E03.lloydhurwitz |
https://mssanz.org.au/modsim2025/files/E03.lloydhurwitz.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
K |
| Lloyd‑Hurwitz B |
A system-wide Energy Return on Investment (EROI) approach to Australia’s renewables transition |
Lloyd‑Hurwitz B, Khandoker T, Reedman L |
https://doi.org/10.36334/modsim2025.E03.lloydhurwitz |
https://mssanz.org.au/modsim2025/files/E03.lloydhurwitz.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
L |
| Reedman L |
A system-wide Energy Return on Investment (EROI) approach to Australia’s renewables transition |
Lloyd‑Hurwitz B, Khandoker T, Reedman L |
https://doi.org/10.36334/modsim2025.E03.lloydhurwitz |
https://mssanz.org.au/modsim2025/files/E03.lloydhurwitz.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
R |
| Nakagiri N |
A three-patch predator-prey model: migration expands the survival region |
Nakagiri N, Sakisaka Y, Tainaka K |
https://doi.org/10.36334/modsim2025.F01.nakagiri |
https://mssanz.org.au/modsim2025/files/F01.nakagiri.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
N |
| Sakisaka Y |
A three-patch predator-prey model: migration expands the survival region |
Nakagiri N, Sakisaka Y, Tainaka K |
https://doi.org/10.36334/modsim2025.F01.nakagiri |
https://mssanz.org.au/modsim2025/files/F01.nakagiri.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
S |
| Tainaka K |
A three-patch predator-prey model: migration expands the survival region |
Nakagiri N, Sakisaka Y, Tainaka K |
https://doi.org/10.36334/modsim2025.F01.nakagiri |
https://mssanz.org.au/modsim2025/files/F01.nakagiri.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
T |
| Awan UK |
A time-series analysis of on-farm storage development in the Northern Murray-Darling Basin |
Awan UK, Reinfelds I, Song E, Stuart M, Song J |
https://doi.org/10.36334/modsim2025.F04.awan |
https://mssanz.org.au/modsim2025/files/F04.awan.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
A |
| Reinfelds I |
A time-series analysis of on-farm storage development in the Northern Murray-Darling Basin |
Awan UK, Reinfelds I, Song E, Stuart M, Song J |
https://doi.org/10.36334/modsim2025.F04.awan |
https://mssanz.org.au/modsim2025/files/F04.awan.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
R |
| Song E |
A time-series analysis of on-farm storage development in the Northern Murray-Darling Basin |
Awan UK, Reinfelds I, Song E, Stuart M, Song J |
https://doi.org/10.36334/modsim2025.F04.awan |
https://mssanz.org.au/modsim2025/files/F04.awan.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
S |
| Song J (June) |
A time-series analysis of on-farm storage development in the Northern Murray-Darling Basin |
Awan UK, Reinfelds I, Song E, Stuart M, Song J |
https://doi.org/10.36334/modsim2025.F04.awan |
https://mssanz.org.au/modsim2025/files/F04.awan.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
S |
| Stuart M |
A time-series analysis of on-farm storage development in the Northern Murray-Darling Basin |
Awan UK, Reinfelds I, Song E, Stuart M, Song J |
https://doi.org/10.36334/modsim2025.F04.awan |
https://mssanz.org.au/modsim2025/files/F04.awan.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
S |
| Shi Y |
A top-down changepoint detection framework based on on two-state Markov-switching model |
Zhang N, Shi Y |
https://doi.org/10.36334/modsim2025.D06.zhang |
https://mssanz.org.au/modsim2025/files/D06.zhang.pdf |
D |
Economics and finance |
D6 |
Applications of new technologies or methods in economics and finance |
S |
| Zhang N (Ning) |
A top-down changepoint detection framework based on on two-state Markov-switching model |
Zhang N, Shi Y |
https://doi.org/10.36334/modsim2025.D06.zhang |
https://mssanz.org.au/modsim2025/files/D06.zhang.pdf |
D |
Economics and finance |
D6 |
Applications of new technologies or methods in economics and finance |
Z |
| Ogilvie JC |
A variable-rate sampling framework for efficient aerodynamic data sampling in CFD applications |
Whitehouse S, Ogilvie JC, Wharington J |
https://doi.org/10.36334/modsim2025.A06.whitehouse |
https://mssanz.org.au/modsim2025/files/A06.whitehouse.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
O |
| Wharington J |
A variable-rate sampling framework for efficient aerodynamic data sampling in CFD applications |
Whitehouse S, Ogilvie JC, Wharington J |
https://doi.org/10.36334/modsim2025.A06.whitehouse |
https://mssanz.org.au/modsim2025/files/A06.whitehouse.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
W |
| Whitehouse S |
A variable-rate sampling framework for efficient aerodynamic data sampling in CFD applications |
Whitehouse S, Ogilvie JC, Wharington J |
https://doi.org/10.36334/modsim2025.A06.whitehouse |
https://mssanz.org.au/modsim2025/files/A06.whitehouse.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
W |
| Kemp D (David) |
A verification of the hydrological impact of 50 years of development in an urban catchment |
Kemp D, Myers B, Pan L |
https://doi.org/10.36334/modsim2025.G06.kemp |
https://mssanz.org.au/modsim2025/files/G06.kemp.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
K |
| Myers B |
A verification of the hydrological impact of 50 years of development in an urban catchment |
Kemp D, Myers B, Pan L |
https://doi.org/10.36334/modsim2025.G06.kemp |
https://mssanz.org.au/modsim2025/files/G06.kemp.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
M |
| Pan L (Liping) |
A verification of the hydrological impact of 50 years of development in an urban catchment |
Kemp D, Myers B, Pan L |
https://doi.org/10.36334/modsim2025.G06.kemp |
https://mssanz.org.au/modsim2025/files/G06.kemp.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
P |
| Beecham R |
Abrupt drought-to-flood transitions in Australia (INVITED SPEAKER) |
Gan R, Dutta D, Beecham R, Sugiyanto M, Brown A |
https://doi.org/10.36334/modsim2025.J02.gan |
https://mssanz.org.au/modsim2025/files/J02.gan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
B |
| Brown A (Andrew) |
Abrupt drought-to-flood transitions in Australia (INVITED SPEAKER) |
Gan R, Dutta D, Beecham R, Sugiyanto M, Brown A |
https://doi.org/10.36334/modsim2025.J02.gan |
https://mssanz.org.au/modsim2025/files/J02.gan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
B |
| Dutta D |
Abrupt drought-to-flood transitions in Australia (INVITED SPEAKER) |
Gan R, Dutta D, Beecham R, Sugiyanto M, Brown A |
https://doi.org/10.36334/modsim2025.J02.gan |
https://mssanz.org.au/modsim2025/files/J02.gan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
D |
| Gan R |
Abrupt drought-to-flood transitions in Australia (INVITED SPEAKER) |
Gan R, Dutta D, Beecham R, Sugiyanto M, Brown A |
https://doi.org/10.36334/modsim2025.J02.gan |
https://mssanz.org.au/modsim2025/files/J02.gan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
G |
| Sugiyanto M |
Abrupt drought-to-flood transitions in Australia (INVITED SPEAKER) |
Gan R, Dutta D, Beecham R, Sugiyanto M, Brown A |
https://doi.org/10.36334/modsim2025.J02.gan |
https://mssanz.org.au/modsim2025/files/J02.gan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
S |
| Davies G |
Accommodating undulating tidal planes in tsunami models |
Macaulay M, Davies G |
https://doi.org/10.36334/modsim2025.G09.macaulay |
https://mssanz.org.au/modsim2025/files/G09.macaulay.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
D |
| Macaulay M |
Accommodating undulating tidal planes in tsunami models |
Macaulay M, Davies G |
https://doi.org/10.36334/modsim2025.G09.macaulay |
https://mssanz.org.au/modsim2025/files/G09.macaulay.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
M |
| Karunaratne S |
Accounting for fire and grazing effects to improve soil organic modelling through emulator-based parameter recalibration |
Ugbaje SU, Pagendam D, Karunaratne S |
https://doi.org/10.36334/modsim2025.C06.ugbaje |
https://mssanz.org.au/modsim2025/files/C06.ugbaje.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
K |
| Pagendam D |
Accounting for fire and grazing effects to improve soil organic modelling through emulator-based parameter recalibration |
Ugbaje SU, Pagendam D, Karunaratne S |
https://doi.org/10.36334/modsim2025.C06.ugbaje |
https://mssanz.org.au/modsim2025/files/C06.ugbaje.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
P |
| Ugbaje SU |
Accounting for fire and grazing effects to improve soil organic modelling through emulator-based parameter recalibration |
Ugbaje SU, Pagendam D, Karunaratne S |
https://doi.org/10.36334/modsim2025.C06.ugbaje |
https://mssanz.org.au/modsim2025/files/C06.ugbaje.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
U |
| Furková F |
Advanced spatial modelling for analysing regional emissions: a spline approach to the environmental kuznets hypothesis |
Furková F |
https://doi.org/10.36334/modsim2025.F01.Furkova |
https://mssanz.org.au/modsim2025/files/F01.Furkova.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
F |
| Wasko C |
Advancing Australia’s flood guidance: Lessons learned and future directions |
Wasko C |
https://doi.org/10.36334/modsim2025.P05.wasko |
https://mssanz.org.au/modsim2025/files/P05.wasko.pdf |
P |
Plenary |
P5 |
Plenary |
W |
| Yang X (Xihua) |
Advancing erosion predictive capabilities through deep learning in southeast Australia |
Zhu EQ, Yang X |
https://doi.org/10.36334/modsim2025.G02.zhu |
https://mssanz.org.au/modsim2025/files/G02.zhu.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Y |
| Zhu EQ (Esther Qinggaozi) |
Advancing erosion predictive capabilities through deep learning in southeast Australia |
Zhu EQ, Yang X |
https://doi.org/10.36334/modsim2025.G02.zhu |
https://mssanz.org.au/modsim2025/files/G02.zhu.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Z |
| Ali MT |
Advancing water–energy–food–ecosystem nexus planning through digital tools: Applications from the Indus Basin |
Hafeez M, Liaqat UW, Ali MT, Ikram I |
https://doi.org/10.36334/modsim2025.J02.hafeez |
https://mssanz.org.au/modsim2025/files/J02.hafeez.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
A |
| Hafeez M (Mohsin) |
Advancing water–energy–food–ecosystem nexus planning through digital tools: Applications from the Indus Basin |
Hafeez M, Liaqat UW, Ali MT, Ikram I |
https://doi.org/10.36334/modsim2025.J02.hafeez |
https://mssanz.org.au/modsim2025/files/J02.hafeez.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
H |
| Ikram I |
Advancing water–energy–food–ecosystem nexus planning through digital tools: Applications from the Indus Basin |
Hafeez M, Liaqat UW, Ali MT, Ikram I |
https://doi.org/10.36334/modsim2025.J02.hafeez |
https://mssanz.org.au/modsim2025/files/J02.hafeez.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
I |
| Liaqat UW |
Advancing water–energy–food–ecosystem nexus planning through digital tools: Applications from the Indus Basin |
Hafeez M, Liaqat UW, Ali MT, Ikram I |
https://doi.org/10.36334/modsim2025.J02.hafeez |
https://mssanz.org.au/modsim2025/files/J02.hafeez.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
L |
| Kajubi E |
Ahead of the curve: Data-driven identification of hydrological state shifts |
Kajubi E, Peterson TJ, Mondal A, Zahedi S |
https://doi.org/10.36334/modsim2025.J01.kajubi |
https://mssanz.org.au/modsim2025/files/J01.kajubi.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
K |
| Mondal A |
Ahead of the curve: Data-driven identification of hydrological state shifts |
Kajubi E, Peterson TJ, Mondal A, Zahedi S |
https://doi.org/10.36334/modsim2025.J01.kajubi |
https://mssanz.org.au/modsim2025/files/J01.kajubi.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
M |
| Peterson TJ |
Ahead of the curve: Data-driven identification of hydrological state shifts |
Kajubi E, Peterson TJ, Mondal A, Zahedi S |
https://doi.org/10.36334/modsim2025.J01.kajubi |
https://mssanz.org.au/modsim2025/files/J01.kajubi.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
P |
| Zahedi S |
Ahead of the curve: Data-driven identification of hydrological state shifts |
Kajubi E, Peterson TJ, Mondal A, Zahedi S |
https://doi.org/10.36334/modsim2025.J01.kajubi |
https://mssanz.org.au/modsim2025/files/J01.kajubi.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
Z |
| Bae S (Sejong) |
AI and ML transform clinical trials using real-world evidence to improve design, analysis, outcomes |
Bae S, Wang C, Le T, Singh KP, Bartolucci A |
https://doi.org/10.36334/modsim2025.H01.bae |
https://mssanz.org.au/modsim2025/files/H01.bae.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
B |
| Bartolucci A |
AI and ML transform clinical trials using real-world evidence to improve design, analysis, outcomes |
Bae S, Wang C, Le T, Singh KP, Bartolucci A |
https://doi.org/10.36334/modsim2025.H01.bae |
https://mssanz.org.au/modsim2025/files/H01.bae.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
B |
| Le T (Tuan) |
AI and ML transform clinical trials using real-world evidence to improve design, analysis, outcomes |
Bae S, Wang C, Le T, Singh KP, Bartolucci A |
https://doi.org/10.36334/modsim2025.H01.bae |
https://mssanz.org.au/modsim2025/files/H01.bae.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
L |
| Singh KP |
AI and ML transform clinical trials using real-world evidence to improve design, analysis, outcomes |
Bae S, Wang C, Le T, Singh KP, Bartolucci A |
https://doi.org/10.36334/modsim2025.H01.bae |
https://mssanz.org.au/modsim2025/files/H01.bae.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
S |
| Wang C (Chenguang) |
AI and ML transform clinical trials using real-world evidence to improve design, analysis, outcomes |
Bae S, Wang C, Le T, Singh KP, Bartolucci A |
https://doi.org/10.36334/modsim2025.H01.bae |
https://mssanz.org.au/modsim2025/files/H01.bae.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
W |
| Crase S |
AI Large Language Models for control of uncrewed aerial systems |
Crase S, Pywell S, Rosser K |
https://doi.org/10.36334/modsim2025.C02.crase |
https://mssanz.org.au/modsim2025/files/C02.crase.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
C |
| Pywell S |
AI Large Language Models for control of uncrewed aerial systems |
Crase S, Pywell S, Rosser K |
https://doi.org/10.36334/modsim2025.C02.crase |
https://mssanz.org.au/modsim2025/files/C02.crase.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
P |
| Rosser K |
AI Large Language Models for control of uncrewed aerial systems |
Crase S, Pywell S, Rosser K |
https://doi.org/10.36334/modsim2025.C02.crase |
https://mssanz.org.au/modsim2025/files/C02.crase.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
R |
| Ghasemi M |
AI-driven detection of false data injection attacks in OLTC-controlled microgrids |
Rao S, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R, Shiri F |
https://doi.org/10.36334/modsim2025.E04.rao |
https://mssanz.org.au/modsim2025/files/E04.rao.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
G |
| Nazari A |
AI-driven detection of false data injection attacks in OLTC-controlled microgrids |
Rao S, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R, Shiri F |
https://doi.org/10.36334/modsim2025.E04.rao |
https://mssanz.org.au/modsim2025/files/E04.rao.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
N |
| Rao S |
AI-driven detection of false data injection attacks in OLTC-controlled microgrids |
Rao S, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R, Shiri F |
https://doi.org/10.36334/modsim2025.E04.rao |
https://mssanz.org.au/modsim2025/files/E04.rao.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
R |
| Shiri F |
AI-driven detection of false data injection attacks in OLTC-controlled microgrids |
Rao S, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R, Shiri F |
https://doi.org/10.36334/modsim2025.E04.rao |
https://mssanz.org.au/modsim2025/files/E04.rao.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
S |
| Thiruvady D |
AI-driven detection of false data injection attacks in OLTC-controlled microgrids |
Rao S, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R, Shiri F |
https://doi.org/10.36334/modsim2025.E04.rao |
https://mssanz.org.au/modsim2025/files/E04.rao.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
T |
| van der Meer R |
AI-driven detection of false data injection attacks in OLTC-controlled microgrids |
Rao S, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R, Shiri F |
https://doi.org/10.36334/modsim2025.E04.rao |
https://mssanz.org.au/modsim2025/files/E04.rao.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
v |
| Halog A |
AI-enhanced life cycle assessment of circular energy–waste systems in sustainable built environments |
Wang S, Halog A |
https://doi.org/10.36334/modsim2025.E02.wangs |
https://mssanz.org.au/modsim2025/files/E02.wangs.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
H |
| Wang S |
AI-enhanced life cycle assessment of circular energy–waste systems in sustainable built environments |
Wang S, Halog A |
https://doi.org/10.36334/modsim2025.E02.wangs |
https://mssanz.org.au/modsim2025/files/E02.wangs.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
W |
| Hood C |
Air quality forecasts made affordable |
Vieno M, Reis S, Scheffler J, Hood C, Wang Y, Liska T, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.vieno |
https://mssanz.org.au/modsim2025/files/G07.vieno.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
H |
| Liska T |
Air quality forecasts made affordable |
Vieno M, Reis S, Scheffler J, Hood C, Wang Y, Liska T, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.vieno |
https://mssanz.org.au/modsim2025/files/G07.vieno.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
L |
| Nemitz E |
Air quality forecasts made affordable |
Vieno M, Reis S, Scheffler J, Hood C, Wang Y, Liska T, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.vieno |
https://mssanz.org.au/modsim2025/files/G07.vieno.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
N |
| Reis S |
Air quality forecasts made affordable |
Vieno M, Reis S, Scheffler J, Hood C, Wang Y, Liska T, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.vieno |
https://mssanz.org.au/modsim2025/files/G07.vieno.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
R |
| Scheffler J |
Air quality forecasts made affordable |
Vieno M, Reis S, Scheffler J, Hood C, Wang Y, Liska T, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.vieno |
https://mssanz.org.au/modsim2025/files/G07.vieno.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
S |
| Vieno M |
Air quality forecasts made affordable |
Vieno M, Reis S, Scheffler J, Hood C, Wang Y, Liska T, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.vieno |
https://mssanz.org.au/modsim2025/files/G07.vieno.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
V |
| Wang Y (Yuanlin) |
Air quality forecasts made affordable |
Vieno M, Reis S, Scheffler J, Hood C, Wang Y, Liska T, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.vieno |
https://mssanz.org.au/modsim2025/files/G07.vieno.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
W |
| Beck R |
Air quality modelling for Pacific Island countries: Insights from the Solomon Islands and Fiji |
Liska T, Scheffler J, Hood C, Wang Y, Beck R, Tomlinson SJ, Carnell EJ, Nemitz E, Vieno M |
https://doi.org/10.36334/modsim2025.F01.liska |
https://mssanz.org.au/modsim2025/files/F01.liska.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
B |
| Carnell EJ |
Air quality modelling for Pacific Island countries: Insights from the Solomon Islands and Fiji |
Liska T, Scheffler J, Hood C, Wang Y, Beck R, Tomlinson SJ, Carnell EJ, Nemitz E, Vieno M |
https://doi.org/10.36334/modsim2025.F01.liska |
https://mssanz.org.au/modsim2025/files/F01.liska.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
C |
| Hood C |
Air quality modelling for Pacific Island countries: Insights from the Solomon Islands and Fiji |
Liska T, Scheffler J, Hood C, Wang Y, Beck R, Tomlinson SJ, Carnell EJ, Nemitz E, Vieno M |
https://doi.org/10.36334/modsim2025.F01.liska |
https://mssanz.org.au/modsim2025/files/F01.liska.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
H |
| Liska T |
Air quality modelling for Pacific Island countries: Insights from the Solomon Islands and Fiji |
Liska T, Scheffler J, Hood C, Wang Y, Beck R, Tomlinson SJ, Carnell EJ, Nemitz E, Vieno M |
https://doi.org/10.36334/modsim2025.F01.liska |
https://mssanz.org.au/modsim2025/files/F01.liska.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
L |
| Nemitz E |
Air quality modelling for Pacific Island countries: Insights from the Solomon Islands and Fiji |
Liska T, Scheffler J, Hood C, Wang Y, Beck R, Tomlinson SJ, Carnell EJ, Nemitz E, Vieno M |
https://doi.org/10.36334/modsim2025.F01.liska |
https://mssanz.org.au/modsim2025/files/F01.liska.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
N |
| Scheffler J |
Air quality modelling for Pacific Island countries: Insights from the Solomon Islands and Fiji |
Liska T, Scheffler J, Hood C, Wang Y, Beck R, Tomlinson SJ, Carnell EJ, Nemitz E, Vieno M |
https://doi.org/10.36334/modsim2025.F01.liska |
https://mssanz.org.au/modsim2025/files/F01.liska.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
S |
| Tomlinson SJ |
Air quality modelling for Pacific Island countries: Insights from the Solomon Islands and Fiji |
Liska T, Scheffler J, Hood C, Wang Y, Beck R, Tomlinson SJ, Carnell EJ, Nemitz E, Vieno M |
https://doi.org/10.36334/modsim2025.F01.liska |
https://mssanz.org.au/modsim2025/files/F01.liska.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
T |
| Vieno M |
Air quality modelling for Pacific Island countries: Insights from the Solomon Islands and Fiji |
Liska T, Scheffler J, Hood C, Wang Y, Beck R, Tomlinson SJ, Carnell EJ, Nemitz E, Vieno M |
https://doi.org/10.36334/modsim2025.F01.liska |
https://mssanz.org.au/modsim2025/files/F01.liska.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
V |
| Wang Y (Yuanlin) |
Air quality modelling for Pacific Island countries: Insights from the Solomon Islands and Fiji |
Liska T, Scheffler J, Hood C, Wang Y, Beck R, Tomlinson SJ, Carnell EJ, Nemitz E, Vieno M |
https://doi.org/10.36334/modsim2025.F01.liska |
https://mssanz.org.au/modsim2025/files/F01.liska.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
W |
| Armstrong J |
An adaptable modelling framework for infection risk and control |
Ozcakir OM, Koolhof IS, Waite LL, Austin T, Pepper CA, Roberts S, Lebbin P, Bennett J, Gearhart S, Gwynne S, Armstrong J |
https://doi.org/10.36334/modsim2025.H02.ozcakir |
https://mssanz.org.au/modsim2025/files/H02.ozcakir.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
A |
| Austin T |
An adaptable modelling framework for infection risk and control |
Ozcakir OM, Koolhof IS, Waite LL, Austin T, Pepper CA, Roberts S, Lebbin P, Bennett J, Gearhart S, Gwynne S, Armstrong J |
https://doi.org/10.36334/modsim2025.H02.ozcakir |
https://mssanz.org.au/modsim2025/files/H02.ozcakir.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
A |
| Bennett J |
An adaptable modelling framework for infection risk and control |
Ozcakir OM, Koolhof IS, Waite LL, Austin T, Pepper CA, Roberts S, Lebbin P, Bennett J, Gearhart S, Gwynne S, Armstrong J |
https://doi.org/10.36334/modsim2025.H02.ozcakir |
https://mssanz.org.au/modsim2025/files/H02.ozcakir.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
B |
| Gearhart S |
An adaptable modelling framework for infection risk and control |
Ozcakir OM, Koolhof IS, Waite LL, Austin T, Pepper CA, Roberts S, Lebbin P, Bennett J, Gearhart S, Gwynne S, Armstrong J |
https://doi.org/10.36334/modsim2025.H02.ozcakir |
https://mssanz.org.au/modsim2025/files/H02.ozcakir.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
G |
| Gwynne S |
An adaptable modelling framework for infection risk and control |
Ozcakir OM, Koolhof IS, Waite LL, Austin T, Pepper CA, Roberts S, Lebbin P, Bennett J, Gearhart S, Gwynne S, Armstrong J |
https://doi.org/10.36334/modsim2025.H02.ozcakir |
https://mssanz.org.au/modsim2025/files/H02.ozcakir.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
G |
| Koolhof IS |
An adaptable modelling framework for infection risk and control |
Ozcakir OM, Koolhof IS, Waite LL, Austin T, Pepper CA, Roberts S, Lebbin P, Bennett J, Gearhart S, Gwynne S, Armstrong J |
https://doi.org/10.36334/modsim2025.H02.ozcakir |
https://mssanz.org.au/modsim2025/files/H02.ozcakir.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
K |
| Lebbin P |
An adaptable modelling framework for infection risk and control |
Ozcakir OM, Koolhof IS, Waite LL, Austin T, Pepper CA, Roberts S, Lebbin P, Bennett J, Gearhart S, Gwynne S, Armstrong J |
https://doi.org/10.36334/modsim2025.H02.ozcakir |
https://mssanz.org.au/modsim2025/files/H02.ozcakir.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
L |
| Ozcakir OM |
An adaptable modelling framework for infection risk and control |
Ozcakir OM, Koolhof IS, Waite LL, Austin T, Pepper CA, Roberts S, Lebbin P, Bennett J, Gearhart S, Gwynne S, Armstrong J |
https://doi.org/10.36334/modsim2025.H02.ozcakir |
https://mssanz.org.au/modsim2025/files/H02.ozcakir.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
O |
| Pepper CA |
An adaptable modelling framework for infection risk and control |
Ozcakir OM, Koolhof IS, Waite LL, Austin T, Pepper CA, Roberts S, Lebbin P, Bennett J, Gearhart S, Gwynne S, Armstrong J |
https://doi.org/10.36334/modsim2025.H02.ozcakir |
https://mssanz.org.au/modsim2025/files/H02.ozcakir.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
P |
| Roberts S |
An adaptable modelling framework for infection risk and control |
Ozcakir OM, Koolhof IS, Waite LL, Austin T, Pepper CA, Roberts S, Lebbin P, Bennett J, Gearhart S, Gwynne S, Armstrong J |
https://doi.org/10.36334/modsim2025.H02.ozcakir |
https://mssanz.org.au/modsim2025/files/H02.ozcakir.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
R |
| Waite LL |
An adaptable modelling framework for infection risk and control |
Ozcakir OM, Koolhof IS, Waite LL, Austin T, Pepper CA, Roberts S, Lebbin P, Bennett J, Gearhart S, Gwynne S, Armstrong J |
https://doi.org/10.36334/modsim2025.H02.ozcakir |
https://mssanz.org.au/modsim2025/files/H02.ozcakir.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
W |
| Jung W |
An agent-based model for the formation of common ground |
Jung W, Mathew TJ, Zino L, Kashima Y, Ye M |
https://doi.org/10.36334/modsim2025.I03.jung |
https://mssanz.org.au/modsim2025/files/I03.jung.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
J |
| Kashima Y |
An agent-based model for the formation of common ground |
Jung W, Mathew TJ, Zino L, Kashima Y, Ye M |
https://doi.org/10.36334/modsim2025.I03.jung |
https://mssanz.org.au/modsim2025/files/I03.jung.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
K |
| Mathew TJ |
An agent-based model for the formation of common ground |
Jung W, Mathew TJ, Zino L, Kashima Y, Ye M |
https://doi.org/10.36334/modsim2025.I03.jung |
https://mssanz.org.au/modsim2025/files/I03.jung.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
M |
| Ye M |
An agent-based model for the formation of common ground |
Jung W, Mathew TJ, Zino L, Kashima Y, Ye M |
https://doi.org/10.36334/modsim2025.I03.jung |
https://mssanz.org.au/modsim2025/files/I03.jung.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
Y |
| Zino L |
An agent-based model for the formation of common ground |
Jung W, Mathew TJ, Zino L, Kashima Y, Ye M |
https://doi.org/10.36334/modsim2025.I03.jung |
https://mssanz.org.au/modsim2025/files/I03.jung.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
Z |
| Rogers AJ |
An agent-based simulation model for defence workforce planning |
Rogers A J, Turan H H |
https://doi.org/10.36334/modsim2025.M02.rogers |
https://mssanz.org.au/modsim2025/files/M02.rogers.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
R |
| Turan HH |
An agent-based simulation model for defence workforce planning |
Rogers A J, Turan H H |
https://doi.org/10.36334/modsim2025.M02.rogers |
https://mssanz.org.au/modsim2025/files/M02.rogers.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
T |
| Hayes MG |
An economic balance sheet approach to quantify the risks affecting broadacre grain farmland value in Western Australia |
Hayes MG |
https://doi.org/10.36334/modsim2025.D06.hayes |
https://mssanz.org.au/modsim2025/files/D06.hayes.pdf |
D |
Economics and finance |
D6 |
Applications of new technologies or methods in economics and finance |
H |
| Fernando V |
An improved routing and scheduling approach for home-based chemotherapy and infusion services with a single nurse |
Fernando V, Ozlen M, Taheri S |
https://doi.org/10.36334/modsim2025.H03.fernando |
https://mssanz.org.au/modsim2025/files/H03.fernando.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
F |
| Ozlen M |
An improved routing and scheduling approach for home-based chemotherapy and infusion services with a single nurse |
Fernando V, Ozlen M, Taheri S |
https://doi.org/10.36334/modsim2025.H03.fernando |
https://mssanz.org.au/modsim2025/files/H03.fernando.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
O |
| Taheri S |
An improved routing and scheduling approach for home-based chemotherapy and infusion services with a single nurse |
Fernando V, Ozlen M, Taheri S |
https://doi.org/10.36334/modsim2025.H03.fernando |
https://mssanz.org.au/modsim2025/files/H03.fernando.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
T |
| Bouzidi N |
An integrated PMP-ABM model of adaptive enforcement and behavioral spillover |
Bouzidi N, Klassert C, Pérez‑Blanco CD |
https://doi.org/10.36334/modsim2025.F07.bouzidi |
https://mssanz.org.au/modsim2025/files/F07.bouzidi.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
B |
| Klassert C |
An integrated PMP-ABM model of adaptive enforcement and behavioral spillover |
Bouzidi N, Klassert C, Pérez‑Blanco CD |
https://doi.org/10.36334/modsim2025.F07.bouzidi |
https://mssanz.org.au/modsim2025/files/F07.bouzidi.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
K |
| Pérez‑Blanco CD |
An integrated PMP-ABM model of adaptive enforcement and behavioral spillover |
Bouzidi N, Klassert C, Pérez‑Blanco CD |
https://doi.org/10.36334/modsim2025.F07.bouzidi |
https://mssanz.org.au/modsim2025/files/F07.bouzidi.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
P |
| Cu P |
Analysing water security using NARCliM 2.0 climate projection |
Dutta J, Vaze J, Kim S |
https://doi.org/10.36334/modsim2025.J02.dutta |
https://mssanz.org.au/modsim2025/files/J02.dutta.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
C |
| Dutta J |
Analysing water security using NARCliM 2.0 climate projection |
Dutta J, Vaze J, Kim S |
https://doi.org/10.36334/modsim2025.J02.dutta |
https://mssanz.org.au/modsim2025/files/J02.dutta.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
D |
| Higgins P |
Analysing water security using NARCliM 2.0 climate projection |
https://doi.org/10.36334/modsim.2025.J02.Dutta |
https://doi.org/10.36334/modsim2025.J02.dutta |
https://mssanz.org.au/modsim2025/files/J02.dutta.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
H |
| Ji F |
Analysing water security using NARCliM 2.0 climate projection |
https://doi.org/10.36334/modsim.2025.J02.Dutta |
https://doi.org/10.36334/modsim2025.J02.dutta |
https://mssanz.org.au/modsim2025/files/J02.dutta.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
J |
| Loonat N |
Analysing water security using NARCliM 2.0 climate projection |
https://doi.org/10.36334/modsim.2025.J02.Dutta |
https://doi.org/10.36334/modsim2025.J02.dutta |
https://mssanz.org.au/modsim2025/files/J02.dutta.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
L |
| Podger GM |
Analysing water security using NARCliM 2.0 climate projection |
https://doi.org/10.36334/modsim.2025.J02.Dutta |
https://doi.org/10.36334/modsim2025.J02.dutta |
https://mssanz.org.au/modsim2025/files/J02.dutta.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
P |
| Reyes R |
Analysing water security using NARCliM 2.0 climate projection |
https://doi.org/10.36334/modsim.2025.J02.Dutta |
https://doi.org/10.36334/modsim2025.J02.dutta |
https://mssanz.org.au/modsim2025/files/J02.dutta.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
R |
| Trim A |
Analysing water security using NARCliM 2.0 climate projection |
Dutta J, Vaze J, Kim S |
https://doi.org/10.36334/modsim2025.J02.dutta |
https://mssanz.org.au/modsim2025/files/J02.dutta.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
T |
| Boland J |
Analysis of changes in peak temperature impact on energy demand in South Australia |
Ekanayake S, Boland J, Myers B, Hewa GA |
https://doi.org/10.36334/modsim2025.E01.ekanayake |
https://mssanz.org.au/modsim2025/files/E01.ekanayake.pdf |
E |
Energy, integrated infrastructure and urban planning |
E1 |
Tools for the Energy Transition |
B |
| Ekanayake S |
Analysis of changes in peak temperature impact on energy demand in South Australia |
Ekanayake S, Boland J, Myers B, Hewa GA |
https://doi.org/10.36334/modsim2025.E01.ekanayake |
https://mssanz.org.au/modsim2025/files/E01.ekanayake.pdf |
E |
Energy, integrated infrastructure and urban planning |
E1 |
Tools for the Energy Transition |
E |
| Hewa GA |
Analysis of changes in peak temperature impact on energy demand in South Australia |
Ekanayake S, Boland J, Myers B, Hewa GA |
https://doi.org/10.36334/modsim2025.E01.ekanayake |
https://mssanz.org.au/modsim2025/files/E01.ekanayake.pdf |
E |
Energy, integrated infrastructure and urban planning |
E1 |
Tools for the Energy Transition |
H |
| Myers B |
Analysis of changes in peak temperature impact on energy demand in South Australia |
Ekanayake S, Boland J, Myers B, Hewa GA |
https://doi.org/10.36334/modsim2025.E01.ekanayake |
https://mssanz.org.au/modsim2025/files/E01.ekanayake.pdf |
E |
Energy, integrated infrastructure and urban planning |
E1 |
Tools for the Energy Transition |
M |
| Loh X |
Analysis of deviations in electricity demand forecasts |
Loh X, Nguyen A, Slater R, Tran T |
https://doi.org/10.36334/modsim2025.E04.loh |
https://mssanz.org.au/modsim2025/files/E04.loh.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
L |
| Nguyen A |
Analysis of deviations in electricity demand forecasts |
Loh X, Nguyen A, Slater R, Tran T |
https://doi.org/10.36334/modsim2025.E04.loh |
https://mssanz.org.au/modsim2025/files/E04.loh.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
N |
| Slater R |
Analysis of deviations in electricity demand forecasts |
Loh X, Nguyen A, Slater R, Tran T |
https://doi.org/10.36334/modsim2025.E04.loh |
https://mssanz.org.au/modsim2025/files/E04.loh.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
S |
| Tran T |
Analysis of deviations in electricity demand forecasts |
Loh X, Nguyen A, Slater R, Tran T |
https://doi.org/10.36334/modsim2025.E04.loh |
https://mssanz.org.au/modsim2025/files/E04.loh.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
T |
| van der Merwe M |
Analysis of sonar dipping regimes by analytical means |
van der Merwe M, Beecham R, Dutta D |
https://doi.org/10.36334/modsim2025.M01.vandermerwe |
https://mssanz.org.au/modsim2025/files/M01.vandermerwe.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
v |
| Almeida A |
Application of hydro-economic modelling for water resource management in the Kamala River Basin, Nepal |
Basnyat D, Almeida A, Lamsal G, Foran T, Wahid S, Penton D, Shrestha A |
https://doi.org/10.36334/modsim2025.J02.basnyat |
https://mssanz.org.au/modsim2025/files/J02.basnyat.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
A |
| Basnyat D |
Application of hydro-economic modelling for water resource management in the Kamala River Basin, Nepal |
Basnyat D, Almeida A, Lamsal G, Foran T, Wahid S, Penton D, Shrestha A |
https://doi.org/10.36334/modsim2025.J02.basnyat |
https://mssanz.org.au/modsim2025/files/J02.basnyat.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
B |
| Foran T |
Application of hydro-economic modelling for water resource management in the Kamala River Basin, Nepal |
Basnyat D, Almeida A, Lamsal G, Foran T, Wahid S, Penton D, Shrestha A |
https://doi.org/10.36334/modsim2025.J02.basnyat |
https://mssanz.org.au/modsim2025/files/J02.basnyat.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
F |
| Lamsal G |
Application of hydro-economic modelling for water resource management in the Kamala River Basin, Nepal |
Basnyat D, Almeida A, Lamsal G, Foran T, Wahid S, Penton D, Shrestha A |
https://doi.org/10.36334/modsim2025.J02.basnyat |
https://mssanz.org.au/modsim2025/files/J02.basnyat.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
L |
| Penton D |
Application of hydro-economic modelling for water resource management in the Kamala River Basin, Nepal |
Basnyat D, Almeida A, Lamsal G, Foran T, Wahid S, Penton D, Shrestha A |
https://doi.org/10.36334/modsim2025.J02.basnyat |
https://mssanz.org.au/modsim2025/files/J02.basnyat.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
P |
| Shrestha A |
Application of hydro-economic modelling for water resource management in the Kamala River Basin, Nepal |
Basnyat D, Almeida A, Lamsal G, Foran T, Wahid S, Penton D, Shrestha A |
https://doi.org/10.36334/modsim2025.J02.basnyat |
https://mssanz.org.au/modsim2025/files/J02.basnyat.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
S |
| Wahid S |
Application of hydro-economic modelling for water resource management in the Kamala River Basin, Nepal |
Basnyat D, Almeida A, Lamsal G, Foran T, Wahid S, Penton D, Shrestha A |
https://doi.org/10.36334/modsim2025.J02.basnyat |
https://mssanz.org.au/modsim2025/files/J02.basnyat.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
W |
| Chakori S |
Applying an ethical lens for more responsible modelling practice |
Szetey K, Ward D, Chakori S, Douglas D, Fulton EA, Grigg N, Ligtermoet E, Munera‑Roldan C, Onyango E, Stirling E, Subramaniam R |
https://doi.org/10.36334/modsim2025.I04.szetey |
https://mssanz.org.au/modsim2025/files/I04.szetey.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
C |
| Douglas D |
Applying an ethical lens for more responsible modelling practice |
Szetey K, Ward D, Chakori S, Douglas D, Fulton EA, Grigg N, Ligtermoet E, Munera‑Roldan C, Onyango E, Stirling E, Subramaniam R |
https://doi.org/10.36334/modsim2025.I04.szetey |
https://mssanz.org.au/modsim2025/files/I04.szetey.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
D |
| Fulton EA |
Applying an ethical lens for more responsible modelling practice |
Szetey K, Ward D, Chakori S, Douglas D, Fulton EA, Grigg N, Ligtermoet E, Munera‑Roldan C, Onyango E, Stirling E, Subramaniam R |
https://doi.org/10.36334/modsim2025.I04.szetey |
https://mssanz.org.au/modsim2025/files/I04.szetey.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
F |
| Grigg N |
Applying an ethical lens for more responsible modelling practice |
Szetey K, Ward D, Chakori S, Douglas D, Fulton EA, Grigg N, Ligtermoet E, Munera‑Roldan C, Onyango E, Stirling E, Subramaniam R |
https://doi.org/10.36334/modsim2025.I04.szetey |
https://mssanz.org.au/modsim2025/files/I04.szetey.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
G |
| Ligtermoet E |
Applying an ethical lens for more responsible modelling practice |
Szetey K, Ward D, Chakori S, Douglas D, Fulton EA, Grigg N, Ligtermoet E, Munera‑Roldan C, Onyango E, Stirling E, Subramaniam R |
https://doi.org/10.36334/modsim2025.I04.szetey |
https://mssanz.org.au/modsim2025/files/I04.szetey.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
L |
| Munera‑Roldan C |
Applying an ethical lens for more responsible modelling practice |
Szetey K, Ward D, Chakori S, Douglas D, Fulton EA, Grigg N, Ligtermoet E, Munera‑Roldan C, Onyango E, Stirling E, Subramaniam R |
https://doi.org/10.36334/modsim2025.I04.szetey |
https://mssanz.org.au/modsim2025/files/I04.szetey.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
M |
| Onyango E |
Applying an ethical lens for more responsible modelling practice |
Szetey K, Ward D, Chakori S, Douglas D, Fulton EA, Grigg N, Ligtermoet E, Munera‑Roldan C, Onyango E, Stirling E, Subramaniam R |
https://doi.org/10.36334/modsim2025.I04.szetey |
https://mssanz.org.au/modsim2025/files/I04.szetey.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
O |
| Stirling E |
Applying an ethical lens for more responsible modelling practice |
Szetey K, Ward D, Chakori S, Douglas D, Fulton EA, Grigg N, Ligtermoet E, Munera‑Roldan C, Onyango E, Stirling E, Subramaniam R |
https://doi.org/10.36334/modsim2025.I04.szetey |
https://mssanz.org.au/modsim2025/files/I04.szetey.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
S |
| Subramaniam R |
Applying an ethical lens for more responsible modelling practice |
Szetey K, Ward D, Chakori S, Douglas D, Fulton EA, Grigg N, Ligtermoet E, Munera‑Roldan C, Onyango E, Stirling E, Subramaniam R |
https://doi.org/10.36334/modsim2025.I04.szetey |
https://mssanz.org.au/modsim2025/files/I04.szetey.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
S |
| Szetey K |
Applying an ethical lens for more responsible modelling practice |
Szetey K, Ward D, Chakori S, Douglas D, Fulton EA, Grigg N, Ligtermoet E, Munera‑Roldan C, Onyango E, Stirling E, Subramaniam R |
https://doi.org/10.36334/modsim2025.I04.szetey |
https://mssanz.org.au/modsim2025/files/I04.szetey.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
S |
| Ward D |
Applying an ethical lens for more responsible modelling practice |
Szetey K, Ward D, Chakori S, Douglas D, Fulton EA, Grigg N, Ligtermoet E, Munera‑Roldan C, Onyango E, Stirling E, Subramaniam R |
https://doi.org/10.36334/modsim2025.I04.szetey |
https://mssanz.org.au/modsim2025/files/I04.szetey.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
W |
| Chapman SC |
APSIM crop model innovations for breeding and deep learning |
Chapman SC, Hammer GL |
https://doi.org/10.36334/modsim2025.B01.chapman |
https://mssanz.org.au/modsim2025/files/B01.chapman.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
C |
| Hammer GL |
APSIM crop model innovations for breeding and deep learning |
Chapman SC, Hammer GL |
https://doi.org/10.36334/modsim2025.B01.chapman |
https://mssanz.org.au/modsim2025/files/B01.chapman.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
H |
| Li C (Chenxia) |
Aquifer elastic skeletal storage coefficient estimation via PS-InSAR, TICA, and Bayesian inference under precipitation variability |
Li C, Yu J, Zhu L |
https://doi.org/10.36334/modsim2025.G02.lic |
https://mssanz.org.au/modsim2025/files/G02.lic.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
L |
| Yu J (Jie) |
Aquifer elastic skeletal storage coefficient estimation via PS-InSAR, TICA, and Bayesian inference under precipitation variability |
Li C, Yu J, Zhu L |
https://doi.org/10.36334/modsim2025.G02.lic |
https://mssanz.org.au/modsim2025/files/G02.lic.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Y |
| Zhu L (Lin) |
Aquifer elastic skeletal storage coefficient estimation via PS-InSAR, TICA, and Bayesian inference under precipitation variability |
Li C, Yu J, Zhu L |
https://doi.org/10.36334/modsim2025.G02.lic |
https://mssanz.org.au/modsim2025/files/G02.lic.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Z |
| Egger F |
Are flow thresholds and observed hydrological data enough to evaluate the effect of environmental watering? |
Egger F, Weber T, Sengupta A, Gibbs M |
https://doi.org/10.36334/modsim2025.F04.egger |
https://mssanz.org.au/modsim2025/files/F04.egger.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
E |
| Gibbs MS |
Are flow thresholds and observed hydrological data enough to evaluate the effect of environmental watering? |
Egger F, Weber T, Sengupta A, Gibbs M |
https://doi.org/10.36334/modsim2025.F04.egger |
https://mssanz.org.au/modsim2025/files/F04.egger.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
G |
| Sengupta A |
Are flow thresholds and observed hydrological data enough to evaluate the effect of environmental watering? |
Egger F, Weber T, Sengupta A, Gibbs M |
https://doi.org/10.36334/modsim2025.F04.egger |
https://mssanz.org.au/modsim2025/files/F04.egger.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
S |
| Weber T |
Are flow thresholds and observed hydrological data enough to evaluate the effect of environmental watering? |
Egger F, Weber T, Sengupta A, Gibbs M |
https://doi.org/10.36334/modsim2025.F04.egger |
https://mssanz.org.au/modsim2025/files/F04.egger.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
W |
| Baker R |
ARES: Aerial Response and Engagement Simulator |
Honhaga I, Do AV, Teffra E, Perry A, Baker R, Szabo C |
https://doi.org/10.36334/modsim2025.M02.honhaga |
https://mssanz.org.au/modsim2025/files/M02.honhaga.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
B |
| Do AV |
ARES: Aerial Response and Engagement Simulator |
Honhaga I, Do AV, Teffra E, Perry A, Baker R, Szabo C |
https://doi.org/10.36334/modsim2025.M02.honhaga |
https://mssanz.org.au/modsim2025/files/M02.honhaga.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
D |
| Honhaga I |
ARES: Aerial Response and Engagement Simulator |
Honhaga I, Do AV, Teffra E, Perry A, Baker R, Szabo C |
https://doi.org/10.36334/modsim2025.M02.honhaga |
https://mssanz.org.au/modsim2025/files/M02.honhaga.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
H |
| Perry A |
ARES: Aerial Response and Engagement Simulator |
Honhaga I, Do AV, Teffra E, Perry A, Baker R, Szabo C |
https://doi.org/10.36334/modsim2025.M02.honhaga |
https://mssanz.org.au/modsim2025/files/M02.honhaga.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
P |
| Szabo C |
ARES: Aerial Response and Engagement Simulator |
Honhaga I, Do AV, Teffra E, Perry A, Baker R, Szabo C |
https://doi.org/10.36334/modsim2025.M02.honhaga |
https://mssanz.org.au/modsim2025/files/M02.honhaga.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
S |
| Teffra E |
ARES: Aerial Response and Engagement Simulator |
Honhaga I, Do AV, Teffra E, Perry A, Baker R, Szabo C |
https://doi.org/10.36334/modsim2025.M02.honhaga |
https://mssanz.org.au/modsim2025/files/M02.honhaga.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
T |
| Hancock GR |
Assessing soil erosion on post-mining and analogous natural landscapes with SIBERIA and SSSPAM models |
Senanayake IP, Hancock GR |
https://doi.org/10.36334/modsim2025.F08.senanayake |
https://mssanz.org.au/modsim2025/files/F08.senanayake.pdf |
F |
Environment and ecology |
F8 |
GIS and environmental modelling |
H |
| Senanayake IP |
Assessing soil erosion on post-mining and analogous natural landscapes with SIBERIA and SSSPAM models |
Senanayake IP, Hancock GR |
https://doi.org/10.36334/modsim2025.F08.senanayake |
https://mssanz.org.au/modsim2025/files/F08.senanayake.pdf |
F |
Environment and ecology |
F8 |
GIS and environmental modelling |
S |
| Doody T |
Assessing sun-induced fluorescence capability for detecting water stress responses in arid vegetation groundwater dependent ecosystems |
Gao S, Doody T |
https://doi.org/10.36334/modsim2025.J11.gao |
https://mssanz.org.au/modsim2025/files/J11.gao.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
D |
| Gao S (Sicong) |
Assessing sun-induced fluorescence capability for detecting water stress responses in arid vegetation groundwater dependent ecosystems |
Gao S, Doody T |
https://doi.org/10.36334/modsim2025.J11.gao |
https://mssanz.org.au/modsim2025/files/J11.gao.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
G |
| Gou Y |
Assessing the contribution of grasslands to Australian national carbon sequestration under a changing climate |
Gou Y, Xu T, Xu Y |
https://doi.org/10.36334/modsim2025.G02.gou |
https://mssanz.org.au/modsim2025/files/G02.gou.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
G |
| Xu T (Tingbao) |
Assessing the contribution of grasslands to Australian national carbon sequestration under a changing climate |
Gou Y, Xu T, Xu Y |
https://doi.org/10.36334/modsim2025.G02.gou |
https://mssanz.org.au/modsim2025/files/G02.gou.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
X |
| Xu Y |
Assessing the contribution of grasslands to Australian national carbon sequestration under a changing climate |
Gou Y, Xu T, Xu Y |
https://doi.org/10.36334/modsim2025.G02.gou |
https://mssanz.org.au/modsim2025/files/G02.gou.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
X |
| He L (Lulu) |
Assessing uncertainty and sensitivity in forest fire behaviour models |
He L, Liu J, Zecchin AC, Maier HR, Reinke K |
https://doi.org/10.36334/modsim2025.G08.he |
https://mssanz.org.au/modsim2025/files/G08.he.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
H |
| Liu J (Jingwen) |
Assessing uncertainty and sensitivity in forest fire behaviour models |
He L, Liu J, Zecchin AC, Maier HR, Reinke K |
https://doi.org/10.36334/modsim2025.G08.he |
https://mssanz.org.au/modsim2025/files/G08.he.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
L |
| Maier HR |
Assessing uncertainty and sensitivity in forest fire behaviour models |
He L, Liu J, Zecchin AC, Maier HR, Reinke K |
https://doi.org/10.36334/modsim2025.G08.he |
https://mssanz.org.au/modsim2025/files/G08.he.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
M |
| Reinke K |
Assessing uncertainty and sensitivity in forest fire behaviour models |
He L, Liu J, Zecchin AC, Maier HR, Reinke K |
https://doi.org/10.36334/modsim2025.G08.he |
https://mssanz.org.au/modsim2025/files/G08.he.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
R |
| Zecchin AC |
Assessing uncertainty and sensitivity in forest fire behaviour models |
He L, Liu J, Zecchin AC, Maier HR, Reinke K |
https://doi.org/10.36334/modsim2025.G08.he |
https://mssanz.org.au/modsim2025/files/G08.he.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
Z |
| Montazeri M |
Assessment of the impact of climate projection resolution on river system outcomes in the Murray-Darling Basin |
Montazeri M, Robertson DE |
https://doi.org/10.36334/modsim2025.J07.montazeri |
https://mssanz.org.au/modsim2025/files/J07.montazeri.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
M |
| Robertson DE |
Assessment of the impact of climate projection resolution on river system outcomes in the Murray-Darling Basin |
Montazeri M, Robertson DE |
https://doi.org/10.36334/modsim2025.J07.montazeri |
https://mssanz.org.au/modsim2025/files/J07.montazeri.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
R |
| Bristow J |
Assumptions tracking in system models: Case studies from digital twins in agriculture and horticulture |
Zhang J, Jenkins H, Bristow J, van Houtte C, Lin HT |
https://doi.org/10.36334/modsim2025.C03.zhang |
https://mssanz.org.au/modsim2025/files/C03.zhang.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
B |
| Jenkins H |
Assumptions tracking in system models: Case studies from digital twins in agriculture and horticulture |
Zhang J, Jenkins H, Bristow J, van Houtte C, Lin HT |
https://doi.org/10.36334/modsim2025.C03.zhang |
https://mssanz.org.au/modsim2025/files/C03.zhang.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
J |
| Lin HT (Harris T) |
Assumptions tracking in system models: Case studies from digital twins in agriculture and horticulture |
Zhang J, Jenkins H, Bristow J, van Houtte C, Lin HT |
https://doi.org/10.36334/modsim2025.C03.zhang |
https://mssanz.org.au/modsim2025/files/C03.zhang.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
L |
| van Houtte C |
Assumptions tracking in system models: Case studies from digital twins in agriculture and horticulture |
Zhang J, Jenkins H, Bristow J, van Houtte C, Lin HT |
https://doi.org/10.36334/modsim2025.C03.zhang |
https://mssanz.org.au/modsim2025/files/C03.zhang.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
v |
| Zhang J (Jingjing) |
Assumptions tracking in system models: Case studies from digital twins in agriculture and horticulture |
Zhang J, Jenkins H, Bristow J, van Houtte C, Lin HT |
https://doi.org/10.36334/modsim2025.C03.zhang |
https://mssanz.org.au/modsim2025/files/C03.zhang.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
Z |
| Chiew FHS |
Attributing hydrological shifts in drought-affected catchments across the Murray-Darling Basin |
Zheng H, Peña-Arancibia JL, Fu G, Yu Y, Chiew FHS, Post D |
https://doi.org/10.36334/modsim2025.J01.zheng |
https://mssanz.org.au/modsim2025/files/J01.zheng.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
C |
| Fu G (Guobin) |
Attributing hydrological shifts in drought-affected catchments across the Murray-Darling Basin |
Zheng H, Peña-Arancibia JL, Fu G, Yu Y, Chiew FHS, Post D |
https://doi.org/10.36334/modsim2025.J01.zheng |
https://mssanz.org.au/modsim2025/files/J01.zheng.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
F |
| Peña-Arancibia JL |
Attributing hydrological shifts in drought-affected catchments across the Murray-Darling Basin |
Zheng H, Peña-Arancibia JL, Fu G, Yu Y, Chiew FHS, Post D |
https://doi.org/10.36334/modsim2025.J01.zheng |
https://mssanz.org.au/modsim2025/files/J01.zheng.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
P |
| Post D |
Attributing hydrological shifts in drought-affected catchments across the Murray-Darling Basin |
Zheng H, Peña-Arancibia JL, Fu G, Yu Y, Chiew FHS, Post D |
https://doi.org/10.36334/modsim2025.J01.zheng |
https://mssanz.org.au/modsim2025/files/J01.zheng.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
P |
| Yu Y (Yingying) |
Attributing hydrological shifts in drought-affected catchments across the Murray-Darling Basin |
Zheng H, Peña-Arancibia JL, Fu G, Yu Y, Chiew FHS, Post D |
https://doi.org/10.36334/modsim2025.J01.zheng |
https://mssanz.org.au/modsim2025/files/J01.zheng.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
Y |
| Zheng H (Hongzing) |
Attributing hydrological shifts in drought-affected catchments across the Murray-Darling Basin |
Zheng H, Peña-Arancibia JL, Fu G, Yu Y, Chiew FHS, Post D |
https://doi.org/10.36334/modsim2025.J01.zheng |
https://mssanz.org.au/modsim2025/files/J01.zheng.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
Z |
| Riches V |
Australian Groundwater Modelling Guidelines: past and future |
Woods JA, Riches V |
https://doi.org/10.36334/modsim2025.J05.woods |
https://mssanz.org.au/modsim2025/files/J05.woods.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
R |
| Woods JA |
Australian Groundwater Modelling Guidelines: past and future |
Woods JA, Riches V |
https://doi.org/10.36334/modsim2025.J05.woods |
https://mssanz.org.au/modsim2025/files/J05.woods.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
W |
| Holgate CM |
Australian meteorological drought: a review of process understanding, research gaps and model development needs |
Holgate CM |
https://doi.org/10.36334/modsim2025.J06.holgate |
https://mssanz.org.au/modsim2025/files/J06.holgate.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
H |
| Al‑Naseri R |
Australian trees for the Australian Earth System Model |
Norton A, Law R, Ziehn T, Srbinovsky J, Harman I, Knauer J, Smith B, Williams L, Al‑Naseri R, Medlyn B, Whyborn L, Carouge C |
https://doi.org/10.36334/modsim2025.F12.norton |
https://mssanz.org.au/modsim2025/files/F12.norton.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
A |
| Carouge C |
Australian trees for the Australian Earth System Model |
Norton A, Law R, Ziehn T, Srbinovsky J, Harman I, Knauer J, Smith B, Williams L, Al‑Naseri R, Medlyn B, Whyborn L, Carouge C |
https://doi.org/10.36334/modsim2025.F12.norton |
https://mssanz.org.au/modsim2025/files/F12.norton.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
C |
| Harman I |
Australian trees for the Australian Earth System Model |
Norton A, Law R, Ziehn T, Srbinovsky J, Harman I, Knauer J, Smith B, Williams L, Al‑Naseri R, Medlyn B, Whyborn L, Carouge C |
https://doi.org/10.36334/modsim2025.F12.norton |
https://mssanz.org.au/modsim2025/files/F12.norton.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
H |
| Knauer J |
Australian trees for the Australian Earth System Model |
Norton A, Law R, Ziehn T, Srbinovsky J, Harman I, Knauer J, Smith B, Williams L, Al‑Naseri R, Medlyn B, Whyborn L, Carouge C |
https://doi.org/10.36334/modsim2025.F12.norton |
https://mssanz.org.au/modsim2025/files/F12.norton.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
K |
| Law R |
Australian trees for the Australian Earth System Model |
Norton A, Law R, Ziehn T, Srbinovsky J, Harman I, Knauer J, Smith B, Williams L, Al‑Naseri R, Medlyn B, Whyborn L, Carouge C |
https://doi.org/10.36334/modsim2025.F12.norton |
https://mssanz.org.au/modsim2025/files/F12.norton.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
L |
| Medlyn B |
Australian trees for the Australian Earth System Model |
Norton A, Law R, Ziehn T, Srbinovsky J, Harman I, Knauer J, Smith B, Williams L, Al‑Naseri R, Medlyn B, Whyborn L, Carouge C |
https://doi.org/10.36334/modsim2025.F12.norton |
https://mssanz.org.au/modsim2025/files/F12.norton.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
M |
| Norton A |
Australian trees for the Australian Earth System Model |
Norton A, Law R, Ziehn T, Srbinovsky J, Harman I, Knauer J, Smith B, Williams L, Al‑Naseri R, Medlyn B, Whyborn L, Carouge C |
https://doi.org/10.36334/modsim2025.F12.norton |
https://mssanz.org.au/modsim2025/files/F12.norton.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
N |
| Smith B |
Australian trees for the Australian Earth System Model |
Norton A, Law R, Ziehn T, Srbinovsky J, Harman I, Knauer J, Smith B, Williams L, Al‑Naseri R, Medlyn B, Whyborn L, Carouge C |
https://doi.org/10.36334/modsim2025.F12.norton |
https://mssanz.org.au/modsim2025/files/F12.norton.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
S |
| Srbinovsky J |
Australian trees for the Australian Earth System Model |
Norton A, Law R, Ziehn T, Srbinovsky J, Harman I, Knauer J, Smith B, Williams L, Al‑Naseri R, Medlyn B, Whyborn L, Carouge C |
https://doi.org/10.36334/modsim2025.F12.norton |
https://mssanz.org.au/modsim2025/files/F12.norton.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
S |
| Whyborn L |
Australian trees for the Australian Earth System Model |
Norton A, Law R, Ziehn T, Srbinovsky J, Harman I, Knauer J, Smith B, Williams L, Al‑Naseri R, Medlyn B, Whyborn L, Carouge C |
https://doi.org/10.36334/modsim2025.F12.norton |
https://mssanz.org.au/modsim2025/files/F12.norton.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
W |
| Williams L |
Australian trees for the Australian Earth System Model |
Norton A, Law R, Ziehn T, Srbinovsky J, Harman I, Knauer J, Smith B, Williams L, Al‑Naseri R, Medlyn B, Whyborn L, Carouge C |
https://doi.org/10.36334/modsim2025.F12.norton |
https://mssanz.org.au/modsim2025/files/F12.norton.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
W |
| Ziehn T |
Australian trees for the Australian Earth System Model |
Norton A, Law R, Ziehn T, Srbinovsky J, Harman I, Knauer J, Smith B, Williams L, Al‑Naseri R, Medlyn B, Whyborn L, Carouge C |
https://doi.org/10.36334/modsim2025.F12.norton |
https://mssanz.org.au/modsim2025/files/F12.norton.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
Z |
| Denman S |
Automated detection of small vessels on waterways for actionable insights |
Price A, McClymont A, Turner C, Roelfsema C, Denman S, Mengersen K, Vercelloni J |
https://doi.org/10.36334/modsim2025.A04.price |
https://mssanz.org.au/modsim2025/files/A04.price.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
D |
| McClymont A |
Automated detection of small vessels on waterways for actionable insights |
Price A, McClymont A, Turner C, Roelfsema C, Denman S, Mengersen K, Vercelloni J |
https://doi.org/10.36334/modsim2025.A04.price |
https://mssanz.org.au/modsim2025/files/A04.price.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
M |
| Mengersen K |
Automated detection of small vessels on waterways for actionable insights |
Price A, McClymont A, Turner C, Roelfsema C, Denman S, Mengersen K, Vercelloni J |
https://doi.org/10.36334/modsim2025.A04.price |
https://mssanz.org.au/modsim2025/files/A04.price.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
M |
| Price A |
Automated detection of small vessels on waterways for actionable insights |
Price A, McClymont A, Turner C, Roelfsema C, Denman S, Mengersen K, Vercelloni J |
https://doi.org/10.36334/modsim2025.A04.price |
https://mssanz.org.au/modsim2025/files/A04.price.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
P |
| Roelfsema C |
Automated detection of small vessels on waterways for actionable insights |
Price A, McClymont A, Turner C, Roelfsema C, Denman S, Mengersen K, Vercelloni J |
https://doi.org/10.36334/modsim2025.A04.price |
https://mssanz.org.au/modsim2025/files/A04.price.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
R |
| Turner C |
Automated detection of small vessels on waterways for actionable insights |
Price A, McClymont A, Turner C, Roelfsema C, Denman S, Mengersen K, Vercelloni J |
https://doi.org/10.36334/modsim2025.A04.price |
https://mssanz.org.au/modsim2025/files/A04.price.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
T |
| Vercelloni J |
Automated detection of small vessels on waterways for actionable insights |
Price A, McClymont A, Turner C, Roelfsema C, Denman S, Mengersen K, Vercelloni J |
https://doi.org/10.36334/modsim2025.A04.price |
https://mssanz.org.au/modsim2025/files/A04.price.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
V |
| Hou X (Xue) |
Automating the extension of time series inputs for the Source GBCCL model |
Hou X, Sheedy T |
https://doi.org/10.36334/modsim2025.J02.hou |
https://mssanz.org.au/modsim2025/files/J02.hou.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
H |
| Sheedy T |
Automating the extension of time series inputs for the Source GBCCL model |
Hou X, Sheedy T |
https://doi.org/10.36334/modsim2025.J02.hou |
https://mssanz.org.au/modsim2025/files/J02.hou.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
S |
| Bennett H |
Autonomy integration for small satellite payloads: A roadmap |
Bennett H, Katudia A, Lingard D, Wallace N, Ingram T, Sukkarieh S |
https://doi.org/10.36334/modsim2025.C02.bennett |
https://mssanz.org.au/modsim2025/files/C02.bennett.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
B |
| Ingram T |
Autonomy integration for small satellite payloads: A roadmap |
Bennett H, Katudia A, Lingard D, Wallace N, Ingram T, Sukkarieh S |
https://doi.org/10.36334/modsim2025.C02.bennett |
https://mssanz.org.au/modsim2025/files/C02.bennett.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
I |
| Katudia A |
Autonomy integration for small satellite payloads: A roadmap |
Bennett H, Katudia A, Lingard D, Wallace N, Ingram T, Sukkarieh S |
https://doi.org/10.36334/modsim2025.C02.bennett |
https://mssanz.org.au/modsim2025/files/C02.bennett.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
K |
| Lingard D |
Autonomy integration for small satellite payloads: A roadmap |
Bennett H, Katudia A, Lingard D, Wallace N, Ingram T, Sukkarieh S |
https://doi.org/10.36334/modsim2025.C02.bennett |
https://mssanz.org.au/modsim2025/files/C02.bennett.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
L |
| Sukkarieh S |
Autonomy integration for small satellite payloads: A roadmap |
Bennett H, Katudia A, Lingard D, Wallace N, Ingram T, Sukkarieh S |
https://doi.org/10.36334/modsim2025.C02.bennett |
https://mssanz.org.au/modsim2025/files/C02.bennett.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
S |
| Wallace N |
Autonomy integration for small satellite payloads: A roadmap |
Bennett H, Katudia A, Lingard D, Wallace N, Ingram T, Sukkarieh S |
https://doi.org/10.36334/modsim2025.C02.bennett |
https://mssanz.org.au/modsim2025/files/C02.bennett.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
W |
| Aihemaiti M |
Bankable by design: Currency settlement, FX hedging and CHPS demand support for a Pilbara-Incheon Green-Hydrogen Pilot Corridor |
Aihemaiti M, Halog A |
https://doi.org/10.36334/modsim2025.E03.aihemaiti |
https://mssanz.org.au/modsim2025/files/E03.aihemaiti.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
A |
| Halog A |
Bankable by design: Currency settlement, FX hedging and CHPS demand support for a Pilbara-Incheon Green-Hydrogen Pilot Corridor |
Aihemaiti M, Halog A |
https://doi.org/10.36334/modsim2025.E03.aihemaiti |
https://mssanz.org.au/modsim2025/files/E03.aihemaiti.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
H |
| Abel M |
Bayesian inference for model construction in hydrology |
Niven RK, Taghavi N, Cordier L, Mohammad-Djafari A, Abel M, Quade M |
https://doi.org/10.36334/modsim2025.J10.niven |
https://mssanz.org.au/modsim2025/files/J10.niven.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
A |
| Cordier L |
Bayesian inference for model construction in hydrology |
Niven RK, Taghavi N, Cordier L, Mohammad-Djafari A, Abel M, Quade M |
https://doi.org/10.36334/modsim2025.J10.niven |
https://mssanz.org.au/modsim2025/files/J10.niven.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
C |
| Mohammad-Djafari A |
Bayesian inference for model construction in hydrology |
Niven RK, Taghavi N, Cordier L, Mohammad-Djafari A, Abel M, Quade M |
https://doi.org/10.36334/modsim2025.J10.niven |
https://mssanz.org.au/modsim2025/files/J10.niven.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
M |
| Niven RK |
Bayesian inference for model construction in hydrology |
Niven RK, Taghavi N, Cordier L, Mohammad-Djafari A, Abel M, Quade M |
https://doi.org/10.36334/modsim2025.J10.niven |
https://mssanz.org.au/modsim2025/files/J10.niven.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
N |
| Quade M |
Bayesian inference for model construction in hydrology |
Niven RK, Taghavi N, Cordier L, Mohammad-Djafari A, Abel M, Quade M |
https://doi.org/10.36334/modsim2025.J10.niven |
https://mssanz.org.au/modsim2025/files/J10.niven.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
Q |
| Taghavi N |
Bayesian inference for model construction in hydrology |
Niven RK, Taghavi N, Cordier L, Mohammad-Djafari A, Abel M, Quade M |
https://doi.org/10.36334/modsim2025.J10.niven |
https://mssanz.org.au/modsim2025/files/J10.niven.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
T |
| Ahmad F |
Benchmarking satellite-based evapotranspiration models with flux towers for agricultural water management |
Liaqat UW, Hafeez M, Ahmad F |
https://doi.org/10.36334/modsim2025.K03.liaqat |
https://mssanz.org.au/modsim2025/files/K03.liaqat.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
A |
| Hafeez M (Mohsin) |
Benchmarking satellite-based evapotranspiration models with flux towers for agricultural water management |
Liaqat UW, Hafeez M, Ahmad F |
https://doi.org/10.36334/modsim2025.K03.liaqat |
https://mssanz.org.au/modsim2025/files/K03.liaqat.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
H |
| Liaqat UW |
Benchmarking satellite-based evapotranspiration models with flux towers for agricultural water management |
Liaqat UW, Hafeez M, Ahmad F |
https://doi.org/10.36334/modsim2025.K03.liaqat |
https://mssanz.org.au/modsim2025/files/K03.liaqat.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
L |
| Jiang Z (Ze) |
Bending time and space to predict hydrological extremes at decadal timescales (STREAM J KEYNOTE) |
Sharma A, Jiang Z, Zhang L, Thapa S |
https://doi.org/10.36334/modsim2025.J10.sharma |
https://mssanz.org.au/modsim2025/files/J10.sharma.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
J |
| Sharma A |
Bending time and space to predict hydrological extremes at decadal timescales (STREAM J KEYNOTE) |
Sharma A, Jiang Z, Zhang L, Thapa S |
https://doi.org/10.36334/modsim2025.J10.sharma |
https://mssanz.org.au/modsim2025/files/J10.sharma.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
S |
| Thapa S |
Bending time and space to predict hydrological extremes at decadal timescales (STREAM J KEYNOTE) |
Sharma A, Jiang Z, Zhang L, Thapa S |
https://doi.org/10.36334/modsim2025.J10.sharma |
https://mssanz.org.au/modsim2025/files/J10.sharma.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
T |
| Zhang L (Liangjing) |
Bending time and space to predict hydrological extremes at decadal timescales (STREAM J KEYNOTE) |
Sharma A, Jiang Z, Zhang L, Thapa S |
https://doi.org/10.36334/modsim2025.J10.sharma |
https://mssanz.org.au/modsim2025/files/J10.sharma.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
Z |
| Fowler K |
Beyond correlation: Cause-effect relations in hydrometeorological systems |
Yadav VK, Vishwakarma BD, Peel M, Ryu D, Fowler K |
https://doi.org/10.36334/modsim2025.K02.yadav |
https://mssanz.org.au/modsim2025/files/K02.yadav.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
F |
| Peel MC |
Beyond correlation: Cause-effect relations in hydrometeorological systems |
Yadav VK, Vishwakarma BD, Peel M, Ryu D, Fowler K |
https://doi.org/10.36334/modsim2025.K02.yadav |
https://mssanz.org.au/modsim2025/files/K02.yadav.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
P |
| Ryu D |
Beyond correlation: Cause-effect relations in hydrometeorological systems |
Yadav VK, Vishwakarma BD, Peel M, Ryu D, Fowler K |
https://doi.org/10.36334/modsim2025.K02.yadav |
https://mssanz.org.au/modsim2025/files/K02.yadav.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
R |
| Vishwakarma BD |
Beyond correlation: Cause-effect relations in hydrometeorological systems |
Yadav VK, Vishwakarma BD, Peel M, Ryu D, Fowler K |
https://doi.org/10.36334/modsim2025.K02.yadav |
https://mssanz.org.au/modsim2025/files/K02.yadav.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
V |
| Yadav VK |
Beyond correlation: Cause-effect relations in hydrometeorological systems |
Yadav VK, Vishwakarma BD, Peel M, Ryu D, Fowler K |
https://doi.org/10.36334/modsim2025.K02.yadav |
https://mssanz.org.au/modsim2025/files/K02.yadav.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
Y |
| Pembleton KG |
Beyond the paddock: Reflecting on APSIM’s legacy and reimagining its future – A panel session |
Pembleton KG |
https://doi.org/10.36334/modsim2025.B01.pembleton |
https://mssanz.org.au/modsim2025/files/B01.pembleton.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
P |
| Beck R |
Biogenic and anthropogenic contributions to air quality extreme events in urban centres in Southeast Asia |
Scheffler J, Vieno M, Beck R, Liska T, Wang Y, Tomlinson SJ, Carnell EJ, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.scheffler |
https://mssanz.org.au/modsim2025/files/G07.scheffler.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
B |
| Carnell EJ |
Biogenic and anthropogenic contributions to air quality extreme events in urban centres in Southeast Asia |
Scheffler J, Vieno M, Beck R, Liska T, Wang Y, Tomlinson SJ, Carnell EJ, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.scheffler |
https://mssanz.org.au/modsim2025/files/G07.scheffler.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
C |
| Liska T |
Biogenic and anthropogenic contributions to air quality extreme events in urban centres in Southeast Asia |
Scheffler J, Vieno M, Beck R, Liska T, Wang Y, Tomlinson SJ, Carnell EJ, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.scheffler |
https://mssanz.org.au/modsim2025/files/G07.scheffler.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
L |
| Nemitz E |
Biogenic and anthropogenic contributions to air quality extreme events in urban centres in Southeast Asia |
Scheffler J, Vieno M, Beck R, Liska T, Wang Y, Tomlinson SJ, Carnell EJ, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.scheffler |
https://mssanz.org.au/modsim2025/files/G07.scheffler.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
N |
| Scheffler J |
Biogenic and anthropogenic contributions to air quality extreme events in urban centres in Southeast Asia |
Scheffler J, Vieno M, Beck R, Liska T, Wang Y, Tomlinson SJ, Carnell EJ, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.scheffler |
https://mssanz.org.au/modsim2025/files/G07.scheffler.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
S |
| Tomlinson SJ |
Biogenic and anthropogenic contributions to air quality extreme events in urban centres in Southeast Asia |
Scheffler J, Vieno M, Beck R, Liska T, Wang Y, Tomlinson SJ, Carnell EJ, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.scheffler |
https://mssanz.org.au/modsim2025/files/G07.scheffler.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
T |
| Vieno M |
Biogenic and anthropogenic contributions to air quality extreme events in urban centres in Southeast Asia |
Scheffler J, Vieno M, Beck R, Liska T, Wang Y, Tomlinson SJ, Carnell EJ, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.scheffler |
https://mssanz.org.au/modsim2025/files/G07.scheffler.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
V |
| Wang Y (Yuanlin) |
Biogenic and anthropogenic contributions to air quality extreme events in urban centres in Southeast Asia |
Scheffler J, Vieno M, Beck R, Liska T, Wang Y, Tomlinson SJ, Carnell EJ, Nemitz E |
https://doi.org/10.36334/modsim2025.G07.scheffler |
https://mssanz.org.au/modsim2025/files/G07.scheffler.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
W |
| Al‑Shammari D |
Boundary line analysis for estimating attainable soil organic carbon across Australian grain regions and farm-level constraints |
Hossen B, Filippi P, Hoskin N, Al‑Shammari D, Karunaratne SB, Bishop TFA |
https://doi.org/10.36334/modsim2025.F13.hossen |
https://mssanz.org.au/modsim2025/files/F13.hossen.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
A |
| Bishop TFA |
Boundary line analysis for estimating attainable soil organic carbon across Australian grain regions and farm-level constraints |
Hossen B, Filippi P, Hoskin N, Al‑Shammari D, Karunaratne SB, Bishop TFA |
https://doi.org/10.36334/modsim2025.F13.hossen |
https://mssanz.org.au/modsim2025/files/F13.hossen.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
B |
| Filippi P |
Boundary line analysis for estimating attainable soil organic carbon across Australian grain regions and farm-level constraints |
Hossen B, Filippi P, Hoskin N, Al‑Shammari D, Karunaratne SB, Bishop TFA |
https://doi.org/10.36334/modsim2025.F13.hossen |
https://mssanz.org.au/modsim2025/files/F13.hossen.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
F |
| Hoskin N |
Boundary line analysis for estimating attainable soil organic carbon across Australian grain regions and farm-level constraints |
Hossen B, Filippi P, Hoskin N, Al‑Shammari D, Karunaratne SB, Bishop TFA |
https://doi.org/10.36334/modsim2025.F13.hossen |
https://mssanz.org.au/modsim2025/files/F13.hossen.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
H |
| Hossen B |
Boundary line analysis for estimating attainable soil organic carbon across Australian grain regions and farm-level constraints |
Hossen B, Filippi P, Hoskin N, Al‑Shammari D, Karunaratne SB, Bishop TFA |
https://doi.org/10.36334/modsim2025.F13.hossen |
https://mssanz.org.au/modsim2025/files/F13.hossen.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
H |
| Karunaratne SB |
Boundary line analysis for estimating attainable soil organic carbon across Australian grain regions and farm-level constraints |
Hossen B, Filippi P, Hoskin N, Al‑Shammari D, Karunaratne SB, Bishop TFA |
https://doi.org/10.36334/modsim2025.F13.hossen |
https://mssanz.org.au/modsim2025/files/F13.hossen.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
K |
| Frost AJ |
BRAIN: Building A national, hourly, kilometre-scale precipitation analysis product for Australia |
Zhang Y, Wang QJ, Frost AJ, Pudashine J, Trewin B, Velasco-Forero C, Su CH, Villani V |
https://doi.org/10.36334/modsim2025.K02.zhang |
https://mssanz.org.au/modsim2025/files/K02.zhang.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
F |
| Pudashine J |
BRAIN: Building A national, hourly, kilometre-scale precipitation analysis product for Australia |
Zhang Y, Wang QJ, Frost AJ, Pudashine J, Trewin B, Velasco-Forero C, Su CH, Villani V |
https://doi.org/10.36334/modsim2025.K02.zhang |
https://mssanz.org.au/modsim2025/files/K02.zhang.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
P |
| Su CH |
BRAIN: Building A national, hourly, kilometre-scale precipitation analysis product for Australia |
Zhang Y, Wang QJ, Frost AJ, Pudashine J, Trewin B, Velasco-Forero C, Su CH, Villani V |
https://doi.org/10.36334/modsim2025.K02.zhang |
https://mssanz.org.au/modsim2025/files/K02.zhang.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
S |
| Trewin B |
BRAIN: Building A national, hourly, kilometre-scale precipitation analysis product for Australia |
Zhang Y, Wang QJ, Frost AJ, Pudashine J, Trewin B, Velasco-Forero C, Su CH, Villani V |
https://doi.org/10.36334/modsim2025.K02.zhang |
https://mssanz.org.au/modsim2025/files/K02.zhang.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
T |
| Velasco-Forero C |
BRAIN: Building A national, hourly, kilometre-scale precipitation analysis product for Australia |
Zhang Y, Wang QJ, Frost AJ, Pudashine J, Trewin B, Velasco-Forero C, Su CH, Villani V |
https://doi.org/10.36334/modsim2025.K02.zhang |
https://mssanz.org.au/modsim2025/files/K02.zhang.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
V |
| Villani V |
BRAIN: Building A national, hourly, kilometre-scale precipitation analysis product for Australia |
Zhang Y, Wang QJ, Frost AJ, Pudashine J, Trewin B, Velasco-Forero C, Su CH, Villani V |
https://doi.org/10.36334/modsim2025.K02.zhang |
https://mssanz.org.au/modsim2025/files/K02.zhang.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
V |
| Wang QJ |
BRAIN: Building A national, hourly, kilometre-scale precipitation analysis product for Australia |
Zhang Y, Wang QJ, Frost AJ, Pudashine J, Trewin B, Velasco-Forero C, Su CH, Villani V |
https://doi.org/10.36334/modsim2025.K02.zhang |
https://mssanz.org.au/modsim2025/files/K02.zhang.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
W |
| Zhang Y (Yuhang) |
BRAIN: Building A national, hourly, kilometre-scale precipitation analysis product for Australia |
Zhang Y, Wang QJ, Frost AJ, Pudashine J, Trewin B, Velasco-Forero C, Su CH, Villani V |
https://doi.org/10.36334/modsim2025.K02.zhang |
https://mssanz.org.au/modsim2025/files/K02.zhang.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
Z |
| Laffan S |
Breaks and trends in MODIS time series across the semi-arid Paroo River catchment, Australia |
Laffan S |
https://doi.org/10.36334/modsim2025.F08.laffan |
https://mssanz.org.au/modsim2025/files/F08.laffan.pdf |
F |
Environment and ecology |
F8 |
GIS and environmental modelling |
L |
| Ou J |
Bridging process knowledge and deep learning for daily-scale maize phenology modeling under climate variability |
Ou J |
https://doi.org/10.36334/modsim2025.B08.ou |
https://mssanz.org.au/modsim2025/files/B08.ou.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
O |
| Chakravarthy K |
Building a water quality model for Receiving Environment Digital Twin (REDiT) |
Lai C, Chakravarthy K, Jackson C |
https://doi.org/10.36334/modsim2025.L04.lai |
https://mssanz.org.au/modsim2025/files/L04.lai.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
C |
| Jackson C |
Building a water quality model for Receiving Environment Digital Twin (REDiT) |
Lai C, Chakravarthy K, Jackson C |
https://doi.org/10.36334/modsim2025.L04.lai |
https://mssanz.org.au/modsim2025/files/L04.lai.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
J |
| Lai C |
Building a water quality model for Receiving Environment Digital Twin (REDiT) |
Lai C, Chakravarthy K, Jackson C |
https://doi.org/10.36334/modsim2025.L04.lai |
https://mssanz.org.au/modsim2025/files/L04.lai.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
L |
| Brede M |
Calibrating robust conceptual hydrological models for future extremes |
Dykman K, Brede M |
https://doi.org/10.36334/modsim2025.K04.dykman |
https://mssanz.org.au/modsim2025/files/K04.dykman.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
B |
| Dykman K |
Calibrating robust conceptual hydrological models for future extremes |
Dykman K, Brede M |
https://doi.org/10.36334/modsim2025.K04.dykman |
https://mssanz.org.au/modsim2025/files/K04.dykman.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
D |
| Hall A (Andrew) |
Calibration and evaluation of APSIM Next Generation for grapevine growth and water use in Australia |
Solgi S, Petrie PR, Horta A, Knowling MJ, Hall A |
https://doi.org/10.36334/modsim2025.B02.solgi |
https://mssanz.org.au/modsim2025/files/B02.solgi.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Horta A |
Calibration and evaluation of APSIM Next Generation for grapevine growth and water use in Australia |
Solgi S, Petrie PR, Horta A, Knowling MJ, Hall A |
https://doi.org/10.36334/modsim2025.B02.solgi |
https://mssanz.org.au/modsim2025/files/B02.solgi.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Knowling MJ |
Calibration and evaluation of APSIM Next Generation for grapevine growth and water use in Australia |
Solgi S, Petrie PR, Horta A, Knowling MJ, Hall A |
https://doi.org/10.36334/modsim2025.B02.solgi |
https://mssanz.org.au/modsim2025/files/B02.solgi.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
K |
| Petrie PR |
Calibration and evaluation of APSIM Next Generation for grapevine growth and water use in Australia |
Solgi S, Petrie PR, Horta A, Knowling MJ, Hall A |
https://doi.org/10.36334/modsim2025.B02.solgi |
https://mssanz.org.au/modsim2025/files/B02.solgi.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
P |
| Solgi S |
Calibration and evaluation of APSIM Next Generation for grapevine growth and water use in Australia |
Solgi S, Petrie PR, Horta A, Knowling MJ, Hall A |
https://doi.org/10.36334/modsim2025.B02.solgi |
https://mssanz.org.au/modsim2025/files/B02.solgi.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
S |
| Heiss I |
Calibration of APSIMx for key crops in Germany with public data |
Heiss I, Katte AS, Koop S, Vogeler I |
https://doi.org/10.36334/modsim2025.B02.heiss |
https://mssanz.org.au/modsim2025/files/B02.heiss.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Katte AS |
Calibration of APSIMx for key crops in Germany with public data |
Heiss I, Katte AS, Koop S, Vogeler I |
https://doi.org/10.36334/modsim2025.B02.heiss |
https://mssanz.org.au/modsim2025/files/B02.heiss.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
K |
| Koop S |
Calibration of APSIMx for key crops in Germany with public data |
Heiss I, Katte AS, Koop S, Vogeler I |
https://doi.org/10.36334/modsim2025.B02.heiss |
https://mssanz.org.au/modsim2025/files/B02.heiss.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
K |
| Vogeler I |
Calibration of APSIMx for key crops in Germany with public data |
Heiss I, Katte AS, Koop S, Vogeler I |
https://doi.org/10.36334/modsim2025.B02.heiss |
https://mssanz.org.au/modsim2025/files/B02.heiss.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
V |
| Fowler K |
Can conceptual rainfall-runoff models capture multi-annual storage dynamics? |
Zhang Z, Fowler K, Peel M |
https://doi.org/10.36334/modsim2025.K04.zhang |
https://mssanz.org.au/modsim2025/files/K04.zhang.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
F |
| Peel MC |
Can conceptual rainfall-runoff models capture multi-annual storage dynamics? |
Zhang Z, Fowler K, Peel M |
https://doi.org/10.36334/modsim2025.K04.zhang |
https://mssanz.org.au/modsim2025/files/K04.zhang.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
P |
| Zhang Z (Ziqi) |
Can conceptual rainfall-runoff models capture multi-annual storage dynamics? |
Zhang Z, Fowler K, Peel M |
https://doi.org/10.36334/modsim2025.K04.zhang |
https://mssanz.org.au/modsim2025/files/K04.zhang.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
Z |
| Burns GZ |
Can our conceptual hydrological models really ‘get’ evapotranspiration? Lessons from testing 15 equations |
Burns GZ, Fowler KJA, Peel MC, Stephens CM |
https://doi.org/10.36334/modsim2025.K04.burns |
https://mssanz.org.au/modsim2025/files/K04.burns.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
B |
| Fowler KJA |
Can our conceptual hydrological models really ‘get’ evapotranspiration? Lessons from testing 15 equations |
Burns GZ, Fowler KJA, Peel MC, Stephens CM |
https://doi.org/10.36334/modsim2025.K04.burns |
https://mssanz.org.au/modsim2025/files/K04.burns.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
F |
| Peel MC |
Can our conceptual hydrological models really ‘get’ evapotranspiration? Lessons from testing 15 equations |
Burns GZ, Fowler KJA, Peel MC, Stephens CM |
https://doi.org/10.36334/modsim2025.K04.burns |
https://mssanz.org.au/modsim2025/files/K04.burns.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
P |
| Stephens CM |
Can our conceptual hydrological models really ‘get’ evapotranspiration? Lessons from testing 15 equations |
Burns GZ, Fowler KJA, Peel MC, Stephens CM |
https://doi.org/10.36334/modsim2025.K04.burns |
https://mssanz.org.au/modsim2025/files/K04.burns.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
S |
| Green H |
Carbon dioxide removal via enhanced weathering: Modelling the effect of soil properties |
Green H, Larsen P, Liu Y, Nelson P |
https://doi.org/10.36334/modsim2025.F13.green |
https://mssanz.org.au/modsim2025/files/F13.green.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
G |
| Larsen P |
Carbon dioxide removal via enhanced weathering: Modelling the effect of soil properties |
Green H, Larsen P, Liu Y, Nelson P |
https://doi.org/10.36334/modsim2025.F13.green |
https://mssanz.org.au/modsim2025/files/F13.green.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
L |
| Liu Y (Yang) |
Carbon dioxide removal via enhanced weathering: Modelling the effect of soil properties |
Green H, Larsen P, Liu Y, Nelson P |
https://doi.org/10.36334/modsim2025.F13.green |
https://mssanz.org.au/modsim2025/files/F13.green.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
L |
| Nelson P |
Carbon dioxide removal via enhanced weathering: Modelling the effect of soil properties |
Green H, Larsen P, Liu Y, Nelson P |
https://doi.org/10.36334/modsim2025.F13.green |
https://mssanz.org.au/modsim2025/files/F13.green.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
N |
| Boland J |
Challenges in deriving representative rainfall-runoff model parameters for flood forecasting: Insights from Sixth Creek, South Australia |
Wijekoon T, Hewa GA, Kemp D, Gamage SHPW, Boland J |
https://doi.org/10.36334/modsim2025.G06.wijekoon |
https://mssanz.org.au/modsim2025/files/G06.wijekoon.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
B |
| Gamage SHPW |
Challenges in deriving representative rainfall-runoff model parameters for flood forecasting: Insights from Sixth Creek, South Australia |
Wijekoon T, Hewa GA, Kemp D, Gamage SHPW, Boland J |
https://doi.org/10.36334/modsim2025.G06.wijekoon |
https://mssanz.org.au/modsim2025/files/G06.wijekoon.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
G |
| Hewa GA |
Challenges in deriving representative rainfall-runoff model parameters for flood forecasting: Insights from Sixth Creek, South Australia |
Wijekoon T, Hewa GA, Kemp D, Gamage SHPW, Boland J |
https://doi.org/10.36334/modsim2025.G06.wijekoon |
https://mssanz.org.au/modsim2025/files/G06.wijekoon.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
H |
| Kemp D (David) |
Challenges in deriving representative rainfall-runoff model parameters for flood forecasting: Insights from Sixth Creek, South Australia |
Wijekoon T, Hewa GA, Kemp D, Gamage SHPW, Boland J |
https://doi.org/10.36334/modsim2025.G06.wijekoon |
https://mssanz.org.au/modsim2025/files/G06.wijekoon.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
K |
| Wijekoon T |
Challenges in deriving representative rainfall-runoff model parameters for flood forecasting: Insights from Sixth Creek, South Australia |
Wijekoon T, Hewa GA, Kemp D, Gamage SHPW, Boland J |
https://doi.org/10.36334/modsim2025.G06.wijekoon |
https://mssanz.org.au/modsim2025/files/G06.wijekoon.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
W |
| Campos Teixeira P |
Changes in groundwater recharge under 2030 and 2050 climates in the Murray-Darling Basin |
Crosbie R, Doble R, Fu G, Campos Teixeira P, Pickett T, Devanand A, Ticehurst C, Gibbs M, Gunner W, Gonzalez D, Post D |
https://doi.org/10.36334/modsim2025.F03.crosbie |
https://mssanz.org.au/modsim2025/files/F03.crosbie.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
C |
| Crosbie RS |
Changes in groundwater recharge under 2030 and 2050 climates in the Murray-Darling Basin |
Crosbie R, Doble R, Fu G, Campos Teixeira P, Pickett T, Devanand A, Ticehurst C, Gibbs M, Gunner W, Gonzalez D, Post D |
https://doi.org/10.36334/modsim2025.F03.crosbie |
https://mssanz.org.au/modsim2025/files/F03.crosbie.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
C |
| Devanand A |
Changes in groundwater recharge under 2030 and 2050 climates in the Murray-Darling Basin |
Crosbie R, Doble R, Fu G, Campos Teixeira P, Pickett T, Devanand A, Ticehurst C, Gibbs M, Gunner W, Gonzalez D, Post D |
https://doi.org/10.36334/modsim2025.F03.crosbie |
https://mssanz.org.au/modsim2025/files/F03.crosbie.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
D |
| Doble R |
Changes in groundwater recharge under 2030 and 2050 climates in the Murray-Darling Basin |
Crosbie R, Doble R, Fu G, Campos Teixeira P, Pickett T, Devanand A, Ticehurst C, Gibbs M, Gunner W, Gonzalez D, Post D |
https://doi.org/10.36334/modsim2025.F03.crosbie |
https://mssanz.org.au/modsim2025/files/F03.crosbie.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
D |
| Fu G (Guobin) |
Changes in groundwater recharge under 2030 and 2050 climates in the Murray-Darling Basin |
Crosbie R, Doble R, Fu G, Campos Teixeira P, Pickett T, Devanand A, Ticehurst C, Gibbs M, Gunner W, Gonzalez D, Post D |
https://doi.org/10.36334/modsim2025.F03.crosbie |
https://mssanz.org.au/modsim2025/files/F03.crosbie.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
F |
| Gibbs MS |
Changes in groundwater recharge under 2030 and 2050 climates in the Murray-Darling Basin |
Crosbie R, Doble R, Fu G, Campos Teixeira P, Pickett T, Devanand A, Ticehurst C, Gibbs M, Gunner W, Gonzalez D, Post D |
https://doi.org/10.36334/modsim2025.F03.crosbie |
https://mssanz.org.au/modsim2025/files/F03.crosbie.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
G |
| Gonzalez D |
Changes in groundwater recharge under 2030 and 2050 climates in the Murray-Darling Basin |
Crosbie R, Doble R, Fu G, Campos Teixeira P, Pickett T, Devanand A, Ticehurst C, Gibbs M, Gunner W, Gonzalez D, Post D |
https://doi.org/10.36334/modsim2025.F03.crosbie |
https://mssanz.org.au/modsim2025/files/F03.crosbie.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
G |
| Gunner W |
Changes in groundwater recharge under 2030 and 2050 climates in the Murray-Darling Basin |
Crosbie R, Doble R, Fu G, Campos Teixeira P, Pickett T, Devanand A, Ticehurst C, Gibbs M, Gunner W, Gonzalez D, Post D |
https://doi.org/10.36334/modsim2025.F03.crosbie |
https://mssanz.org.au/modsim2025/files/F03.crosbie.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
G |
| Pickett T |
Changes in groundwater recharge under 2030 and 2050 climates in the Murray-Darling Basin |
Crosbie R, Doble R, Fu G, Campos Teixeira P, Pickett T, Devanand A, Ticehurst C, Gibbs M, Gunner W, Gonzalez D, Post D |
https://doi.org/10.36334/modsim2025.F03.crosbie |
https://mssanz.org.au/modsim2025/files/F03.crosbie.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
P |
| Post D |
Changes in groundwater recharge under 2030 and 2050 climates in the Murray-Darling Basin |
Crosbie R, Doble R, Fu G, Campos Teixeira P, Pickett T, Devanand A, Ticehurst C, Gibbs M, Gunner W, Gonzalez D, Post D |
https://doi.org/10.36334/modsim2025.F03.crosbie |
https://mssanz.org.au/modsim2025/files/F03.crosbie.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
P |
| Ticehurst C |
Changes in groundwater recharge under 2030 and 2050 climates in the Murray-Darling Basin |
Crosbie R, Doble R, Fu G, Campos Teixeira P, Pickett T, Devanand A, Ticehurst C, Gibbs M, Gunner W, Gonzalez D, Post D |
https://doi.org/10.36334/modsim2025.F03.crosbie |
https://mssanz.org.au/modsim2025/files/F03.crosbie.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
T |
| Baig F |
Changes in water availability and dryness under global climate change |
Faiz MA, Baig F, Zhang Y |
https://doi.org/10.36334/modsim2025.K03.faiz |
https://mssanz.org.au/modsim2025/files/K03.faiz.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
B |
| Faiz MA |
Changes in water availability and dryness under global climate change |
Faiz MA, Baig F, Zhang Y |
https://doi.org/10.36334/modsim2025.K03.faiz |
https://mssanz.org.au/modsim2025/files/K03.faiz.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
F |
| Zhang Y (Yongqiang) |
Changes in water availability and dryness under global climate change |
Faiz MA, Baig F, Zhang Y |
https://doi.org/10.36334/modsim2025.K03.faiz |
https://mssanz.org.au/modsim2025/files/K03.faiz.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
Z |
| Bende‑Michl U |
Changes to wet and dry spell characteristics in Australian catchments |
Thomas S, Wasko C, Guo D, Bende‑Michl U, Peel M |
https://doi.org/10.36334/modsim2025.K07.thomas |
https://mssanz.org.au/modsim2025/files/K07.thomas.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
B |
| Guo D (Danlu) |
Changes to wet and dry spell characteristics in Australian catchments |
Thomas S, Wasko C, Guo D, Bende‑Michl U, Peel M |
https://doi.org/10.36334/modsim2025.K07.thomas |
https://mssanz.org.au/modsim2025/files/K07.thomas.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
G |
| Peel MC |
Changes to wet and dry spell characteristics in Australian catchments |
Thomas S, Wasko C, Guo D, Bende‑Michl U, Peel M |
https://doi.org/10.36334/modsim2025.K07.thomas |
https://mssanz.org.au/modsim2025/files/K07.thomas.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
P |
| Thomas S |
Changes to wet and dry spell characteristics in Australian catchments |
Thomas S, Wasko C, Guo D, Bende‑Michl U, Peel M |
https://doi.org/10.36334/modsim2025.K07.thomas |
https://mssanz.org.au/modsim2025/files/K07.thomas.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
T |
| Wasko C |
Changes to wet and dry spell characteristics in Australian catchments |
Thomas S, Wasko C, Guo D, Bende‑Michl U, Peel M |
https://doi.org/10.36334/modsim2025.K07.thomas |
https://mssanz.org.au/modsim2025/files/K07.thomas.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
W |
| Dillon S |
Characterisation of new cultivars in national variety trials using genomic prediction and crop growth model |
Zheng B, Hu P, Whish J, Lilley J, Wang E, Dillon S, Helliwell C |
https://doi.org/10.36334/modsim2025.B06.zheng |
https://mssanz.org.au/modsim2025/files/B06.zheng.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
D |
| Helliwell C |
Characterisation of new cultivars in national variety trials using genomic prediction and crop growth model |
Zheng B, Hu P, Whish J, Lilley J, Wang E, Dillon S, Helliwell C |
https://doi.org/10.36334/modsim2025.B06.zheng |
https://mssanz.org.au/modsim2025/files/B06.zheng.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
H |
| Hu P (Pengcheng) |
Characterisation of new cultivars in national variety trials using genomic prediction and crop growth model |
Zheng B, Hu P, Whish J, Lilley J, Wang E, Dillon S, Helliwell C |
https://doi.org/10.36334/modsim2025.B06.zheng |
https://mssanz.org.au/modsim2025/files/B06.zheng.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
H |
| Lilley J |
Characterisation of new cultivars in national variety trials using genomic prediction and crop growth model |
Zheng B, Hu P, Whish J, Lilley J, Wang E, Dillon S, Helliwell C |
https://doi.org/10.36334/modsim2025.B06.zheng |
https://mssanz.org.au/modsim2025/files/B06.zheng.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
L |
| Wang E (Enli) |
Characterisation of new cultivars in national variety trials using genomic prediction and crop growth model |
Zheng B, Hu P, Whish J, Lilley J, Wang E, Dillon S, Helliwell C |
https://doi.org/10.36334/modsim2025.B06.zheng |
https://mssanz.org.au/modsim2025/files/B06.zheng.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
W |
| Whish J |
Characterisation of new cultivars in national variety trials using genomic prediction and crop growth model |
Zheng B, Hu P, Whish J, Lilley J, Wang E, Dillon S, Helliwell C |
https://doi.org/10.36334/modsim2025.B06.zheng |
https://mssanz.org.au/modsim2025/files/B06.zheng.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
W |
| Zheng B (Bangyou) |
Characterisation of new cultivars in national variety trials using genomic prediction and crop growth model |
Zheng B, Hu P, Whish J, Lilley J, Wang E, Dillon S, Helliwell C |
https://doi.org/10.36334/modsim2025.B06.zheng |
https://mssanz.org.au/modsim2025/files/B06.zheng.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
Z |
| Marshall L |
Characterising multi-source uncertainties in satellite-based surrogate river discharge models |
Yoon HN, Marshall L, Sharma A |
https://doi.org/10.36334/modsim2025.J10.yoon |
https://mssanz.org.au/modsim2025/files/J10.yoon.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
M |
| Sharma A |
Characterising multi-source uncertainties in satellite-based surrogate river discharge models |
Yoon HN, Marshall L, Sharma A |
https://doi.org/10.36334/modsim2025.J10.yoon |
https://mssanz.org.au/modsim2025/files/J10.yoon.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
S |
| Yoon HN |
Characterising multi-source uncertainties in satellite-based surrogate river discharge models |
Yoon HN, Marshall L, Sharma A |
https://doi.org/10.36334/modsim2025.J10.yoon |
https://mssanz.org.au/modsim2025/files/J10.yoon.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
Y |
| Han K (Kwanghee) |
Characterizing transboundary dam operations using only remote sensing data: insights from the Korea border |
Han K, Kim S, Mehrotra R, Sharma A |
https://doi.org/10.36334/modsim2025.J10.han |
https://mssanz.org.au/modsim2025/files/J10.han.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
H |
| Kim S (Seokhyeon) |
Characterizing transboundary dam operations using only remote sensing data: insights from the Korea border |
Han K, Kim S, Mehrotra R, Sharma A |
https://doi.org/10.36334/modsim2025.J10.han |
https://mssanz.org.au/modsim2025/files/J10.han.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
K |
| Mehrotra R |
Characterizing transboundary dam operations using only remote sensing data: insights from the Korea border |
Han K, Kim S, Mehrotra R, Sharma A |
https://doi.org/10.36334/modsim2025.J10.han |
https://mssanz.org.au/modsim2025/files/J10.han.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
M |
| Sharma A |
Characterizing transboundary dam operations using only remote sensing data: insights from the Korea border |
Han K, Kim S, Mehrotra R, Sharma A |
https://doi.org/10.36334/modsim2025.J10.han |
https://mssanz.org.au/modsim2025/files/J10.han.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
S |
| Boss M |
Characterizing yield through wheat's perception of time: Phenomics, enviromics and genomics-based predictions |
Roth L, Herrera J M, Levy Hӓner L, Pellet D, Fossati D, Boss M, Chen X, Nousi P, Volpi M |
https://doi.org/10.36334/modsim2025.F11.roth |
https://mssanz.org.au/modsim2025/files/F11.roth.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
B |
| Chen X (Xiaoran) |
Characterizing yield through wheat's perception of time: Phenomics, enviromics and genomics-based predictions |
Roth L, Herrera J M, Levy Hӓner L, Pellet D, Fossati D, Boss M, Chen X, Nousi P, Volpi M |
https://doi.org/10.36334/modsim2025.F11.roth |
https://mssanz.org.au/modsim2025/files/F11.roth.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
C |
| Fossati D |
Characterizing yield through wheat's perception of time: Phenomics, enviromics and genomics-based predictions |
Roth L, Herrera J M, Levy Hӓner L, Pellet D, Fossati D, Boss M, Chen X, Nousi P, Volpi M |
https://doi.org/10.36334/modsim2025.F11.roth |
https://mssanz.org.au/modsim2025/files/F11.roth.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
F |
| Herrera JM |
Characterizing yield through wheat's perception of time: Phenomics, enviromics and genomics-based predictions |
Roth L, Herrera J M, Levy Hӓner L, Pellet D, Fossati D, Boss M, Chen X, Nousi P, Volpi M |
https://doi.org/10.36334/modsim2025.F11.roth |
https://mssanz.org.au/modsim2025/files/F11.roth.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
H |
| Levy Hӓner L |
Characterizing yield through wheat's perception of time: Phenomics, enviromics and genomics-based predictions |
Roth L, Herrera J M, Levy Hӓner L, Pellet D, Fossati D, Boss M, Chen X, Nousi P, Volpi M |
https://doi.org/10.36334/modsim2025.F11.roth |
https://mssanz.org.au/modsim2025/files/F11.roth.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
L |
| Nousi P |
Characterizing yield through wheat's perception of time: Phenomics, enviromics and genomics-based predictions |
Roth L, Herrera J M, Levy Hӓner L, Pellet D, Fossati D, Boss M, Chen X, Nousi P, Volpi M |
https://doi.org/10.36334/modsim2025.F11.roth |
https://mssanz.org.au/modsim2025/files/F11.roth.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
N |
| Pellet D |
Characterizing yield through wheat's perception of time: Phenomics, enviromics and genomics-based predictions |
Roth L, Herrera J M, Levy Hӓner L, Pellet D, Fossati D, Boss M, Chen X, Nousi P, Volpi M |
https://doi.org/10.36334/modsim2025.F11.roth |
https://mssanz.org.au/modsim2025/files/F11.roth.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
P |
| Roth L |
Characterizing yield through wheat's perception of time: Phenomics, enviromics and genomics-based predictions |
Roth L, Herrera J M, Levy Hӓner L, Pellet D, Fossati D, Boss M, Chen X, Nousi P, Volpi M |
https://doi.org/10.36334/modsim2025.F11.roth |
https://mssanz.org.au/modsim2025/files/F11.roth.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
R |
| Volpi M |
Characterizing yield through wheat's perception of time: Phenomics, enviromics and genomics-based predictions |
Roth L, Herrera J M, Levy Hӓner L, Pellet D, Fossati D, Boss M, Chen X, Nousi P, Volpi M |
https://doi.org/10.36334/modsim2025.F11.roth |
https://mssanz.org.au/modsim2025/files/F11.roth.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
V |
| Hobday A |
Charting the future: A horizon scan for ecological forecasting research in Oceania |
Hobday A |
https://doi.org/10.36334/modsim2025.F09.hobday |
https://mssanz.org.au/modsim2025/files/F09.hobday.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
H |
| Hashemi Madani FS |
Climate and land-use change impacts on flow and non-flow drivers of ecological outcomes |
Hashemi Madani FS, Horne A, John A |
https://doi.org/10.36334/modsim2025.J02.hashemimadani |
https://mssanz.org.au/modsim2025/files/J02.hashemimadani.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
H |
| Horne A |
Climate and land-use change impacts on flow and non-flow drivers of ecological outcomes |
Hashemi Madani FS, Horne A, John A |
https://doi.org/10.36334/modsim2025.J02.hashemimadani |
https://mssanz.org.au/modsim2025/files/J02.hashemimadani.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
H |
| John A |
Climate and land-use change impacts on flow and non-flow drivers of ecological outcomes |
Hashemi Madani FS, Horne A, John A |
https://doi.org/10.36334/modsim2025.J02.hashemimadani |
https://mssanz.org.au/modsim2025/files/J02.hashemimadani.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
J |
| McCosker R |
Climate change and gully erosion in Queensland - a preliminary investigation |
Roberts M E, McCosker R, Rice E |
https://doi.org/10.36334/modsim2025.L04.roberts |
https://mssanz.org.au/modsim2025/files/L04.roberts.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
M |
| Rice E |
Climate change and gully erosion in Queensland - a preliminary investigation |
Roberts M E, McCosker R, Rice E |
https://doi.org/10.36334/modsim2025.L04.roberts |
https://mssanz.org.au/modsim2025/files/L04.roberts.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
R |
| Roberts ME |
Climate change and gully erosion in Queensland - a preliminary investigation |
Roberts M E, McCosker R, Rice E |
https://doi.org/10.36334/modsim2025.L04.roberts |
https://mssanz.org.au/modsim2025/files/L04.roberts.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
R |
| Pamminger L |
Climate change appears to alter the proportion of rainfall that becomes streamflow in Australia |
Pamminger L, Peterson T, Peel M |
https://doi.org/10.36334/modsim2025.K04.pamminger |
https://mssanz.org.au/modsim2025/files/K04.pamminger.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
P |
| Peel MC |
Climate change appears to alter the proportion of rainfall that becomes streamflow in Australia |
Pamminger L, Peterson T, Peel M |
https://doi.org/10.36334/modsim2025.K04.pamminger |
https://mssanz.org.au/modsim2025/files/K04.pamminger.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
P |
| Peterson T |
Climate change appears to alter the proportion of rainfall that becomes streamflow in Australia |
Pamminger L, Peterson T, Peel M |
https://doi.org/10.36334/modsim2025.K04.pamminger |
https://mssanz.org.au/modsim2025/files/K04.pamminger.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
P |
| Huang Z |
Climate change dominates recent increase in streamflow in the Yellow River Basin |
Huang Z, Li C, Zhang Y |
https://doi.org/10.36334/modsim2025.K08.huang |
https://mssanz.org.au/modsim2025/files/K08.huang.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
H |
| Li C (Congcong) |
Climate change dominates recent increase in streamflow in the Yellow River Basin |
Huang Z, Li C, Zhang Y |
https://doi.org/10.36334/modsim2025.K08.huang |
https://mssanz.org.au/modsim2025/files/K08.huang.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
L |
| Zhang Y (Yongqiang) |
Climate change dominates recent increase in streamflow in the Yellow River Basin |
Huang Z, Li C, Zhang Y |
https://doi.org/10.36334/modsim2025.K08.huang |
https://mssanz.org.au/modsim2025/files/K08.huang.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
Z |
| Gao Y (Yang) |
Climate change drove the decline in Yangtze Estuary net primary production over the past two decades |
Wang M, Gao Y |
https://doi.org/10.36334/modsim2025.K08.wang |
https://mssanz.org.au/modsim2025/files/K08.wang.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
G |
| Wang M |
Climate change drove the decline in Yangtze Estuary net primary production over the past two decades |
Wang M, Gao Y |
https://doi.org/10.36334/modsim2025.K08.wang |
https://mssanz.org.au/modsim2025/files/K08.wang.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
W |
| Chian G |
Climate change rainfall data algorithm for continuous modelling of stormwater |
Stancu M, Chian G |
https://doi.org/10.36334/modsim2025.G03.stancu |
https://mssanz.org.au/modsim2025/files/G03.stancu.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
C |
| Stancu M |
Climate change rainfall data algorithm for continuous modelling of stormwater |
Stancu M, Chian G |
https://doi.org/10.36334/modsim2025.G03.stancu |
https://mssanz.org.au/modsim2025/files/G03.stancu.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
S |
| Hall A (Andrew) |
Climate change will accelerate seasonal fire weather severity by 8–24% in Southeastern Australia |
Roba N, Zeleke K, Hall A, Haregeweyn N |
https://doi.org/10.36334/modsim2025.G08.roba |
https://mssanz.org.au/modsim2025/files/G08.roba.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
H |
| Haregeweyn N |
Climate change will accelerate seasonal fire weather severity by 8–24% in Southeastern Australia |
Roba N, Zeleke K, Hall A, Haregeweyn N |
https://doi.org/10.36334/modsim2025.G08.roba |
https://mssanz.org.au/modsim2025/files/G08.roba.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
H |
| Roba N |
Climate change will accelerate seasonal fire weather severity by 8–24% in Southeastern Australia |
Roba N, Zeleke K, Hall A, Haregeweyn N |
https://doi.org/10.36334/modsim2025.G08.roba |
https://mssanz.org.au/modsim2025/files/G08.roba.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
R |
| Zeleke K |
Climate change will accelerate seasonal fire weather severity by 8–24% in Southeastern Australia |
Roba N, Zeleke K, Hall A, Haregeweyn N |
https://doi.org/10.36334/modsim2025.G08.roba |
https://mssanz.org.au/modsim2025/files/G08.roba.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
Z |
| Cracknell N |
Climate data revisions and their impact on hydrological modelling |
Cracknell N, Reyes R, Simpson J, Dutta D |
https://doi.org/10.36334/modsim2025.J02.cracknell |
https://mssanz.org.au/modsim2025/files/J02.cracknell.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
C |
| Dutta D |
Climate data revisions and their impact on hydrological modelling |
Cracknell N, Reyes R, Simpson J, Dutta D |
https://doi.org/10.36334/modsim2025.J02.cracknell |
https://mssanz.org.au/modsim2025/files/J02.cracknell.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
D |
| Reyes R |
Climate data revisions and their impact on hydrological modelling |
Cracknell N, Reyes R, Simpson J, Dutta D |
https://doi.org/10.36334/modsim2025.J02.cracknell |
https://mssanz.org.au/modsim2025/files/J02.cracknell.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
R |
| Simpson J |
Climate data revisions and their impact on hydrological modelling |
Cracknell N, Reyes R, Simpson J, Dutta D |
https://doi.org/10.36334/modsim2025.J02.cracknell |
https://mssanz.org.au/modsim2025/files/J02.cracknell.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
S |
| Culley S (Sam) |
Climate risk assessment using multiple conceptual system models: A framework and application to water demand |
Leigh R, Knowling MJ, Westra S, McInerney D, Culley S |
https://doi.org/10.36334/modsim2025.B08.leigh |
https://mssanz.org.au/modsim2025/files/B08.leigh.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
C |
| Knowling MJ |
Climate risk assessment using multiple conceptual system models: A framework and application to water demand |
Leigh R, Knowling MJ, Westra S, McInerney D, Culley S |
https://doi.org/10.36334/modsim2025.B08.leigh |
https://mssanz.org.au/modsim2025/files/B08.leigh.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
K |
| Leigh R |
Climate risk assessment using multiple conceptual system models: A framework and application to water demand |
Leigh R, Knowling MJ, Westra S, McInerney D, Culley S |
https://doi.org/10.36334/modsim2025.B08.leigh |
https://mssanz.org.au/modsim2025/files/B08.leigh.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
L |
| McInerney D |
Climate risk assessment using multiple conceptual system models: A framework and application to water demand |
Leigh R, Knowling MJ, Westra S, McInerney D, Culley S |
https://doi.org/10.36334/modsim2025.B08.leigh |
https://mssanz.org.au/modsim2025/files/B08.leigh.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
M |
| Westra S |
Climate risk assessment using multiple conceptual system models: A framework and application to water demand |
Leigh R, Knowling MJ, Westra S, McInerney D, Culley S |
https://doi.org/10.36334/modsim2025.B08.leigh |
https://mssanz.org.au/modsim2025/files/B08.leigh.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
W |
| Bai Y |
Climate-driven rice expansion in northeast China: A geospatial analysis |
Bai Y, Xu T, Strong C |
https://doi.org/10.36334/modsim2025.B05.bai |
https://mssanz.org.au/modsim2025/files/B05.bai.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
B |
| Strong C |
Climate-driven rice expansion in northeast China: A geospatial analysis |
Bai Y, Xu T, Strong C |
https://doi.org/10.36334/modsim2025.B05.bai |
https://mssanz.org.au/modsim2025/files/B05.bai.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
S |
| Xu T (Tingbao) |
Climate-driven rice expansion in northeast China: A geospatial analysis |
Bai Y, Xu T, Strong C |
https://doi.org/10.36334/modsim2025.B05.bai |
https://mssanz.org.au/modsim2025/files/B05.bai.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
X |
| Ahmad MD |
Climate-resilient and adaptive water management for resilient farming and improved productivity in Pakistan |
Ahmad MD, Cuddy SM, Watto MA, Yu Y |
https://doi.org/10.36334/modsim2025.F04.ahmad |
https://mssanz.org.au/modsim2025/files/F04.ahmad.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
A |
| Cuddy SM |
Climate-resilient and adaptive water management for resilient farming and improved productivity in Pakistan |
Ahmad MUD, Cuddy SM, Watto MA, Yu Y |
https://doi.org/10.36334/modsim2025.F04.ahmad |
https://mssanz.org.au/modsim2025/files/F04.ahmad.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
C |
| Watto MA |
Climate-resilient and adaptive water management for resilient farming and improved productivity in Pakistan |
Ahmad MUD, Cuddy SM, Watto MA, Yu Y |
https://doi.org/10.36334/modsim2025.F04.ahmad |
https://mssanz.org.au/modsim2025/files/F04.ahmad.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
W |
| Yu Y |
Climate-resilient and adaptive water management for resilient farming and improved productivity in Pakistan |
Ahmad MUD, Cuddy SM, Watto MA, Yu Y |
https://doi.org/10.36334/modsim2025.F04.ahmad |
https://mssanz.org.au/modsim2025/files/F04.ahmad.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
Y |
| Beard S |
Clustering irregular cytokine time series using Gaussian Process Mixture Models |
Beard S |
https://doi.org/10.36334/modsim2025.H02.beard |
https://mssanz.org.au/modsim2025/files/H02.beard.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
B |
| Breda A |
Combining catchment hydro-sedimentological models with wetland eco-geomorphological models to assess mangrove resilience to climate and land use changes in the Pacific Islands |
Jorquera E, Rodríguez JF, Saco PM, Quijano Baron JP, Breda A, Sandi S |
https://doi.org/10.36334/modsim2025.J11.jorquera |
https://mssanz.org.au/modsim2025/files/J11.jorquera.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
B |
| Jorquera E |
Combining catchment hydro-sedimentological models with wetland eco-geomorphological models to assess mangrove resilience to climate and land use changes in the Pacific Islands |
Jorquera E, Rodríguez JF, Saco PM, Quijano Baron JP, Breda A, Sandi S |
https://doi.org/10.36334/modsim2025.J11.jorquera |
https://mssanz.org.au/modsim2025/files/J11.jorquera.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
J |
| Quijano Baron JP |
Combining catchment hydro-sedimentological models with wetland eco-geomorphological models to assess mangrove resilience to climate and land use changes in the Pacific Islands |
Jorquera E, Rodríguez JF, Saco PM, Quijano Baron JP, Breda A, Sandi S |
https://doi.org/10.36334/modsim2025.J11.jorquera |
https://mssanz.org.au/modsim2025/files/J11.jorquera.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
Q |
| Rodríguez JF |
Combining catchment hydro-sedimentological models with wetland eco-geomorphological models to assess mangrove resilience to climate and land use changes in the Pacific Islands |
Jorquera E, Rodríguez JF, Saco PM, Quijano Baron JP, Breda A, Sandi S |
https://doi.org/10.36334/modsim2025.J11.jorquera |
https://mssanz.org.au/modsim2025/files/J11.jorquera.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
R |
| Saco PM |
Combining catchment hydro-sedimentological models with wetland eco-geomorphological models to assess mangrove resilience to climate and land use changes in the Pacific Islands |
Jorquera E, Rodríguez JF, Saco PM, Quijano Baron JP, Breda A, Sandi S |
https://doi.org/10.36334/modsim2025.J11.jorquera |
https://mssanz.org.au/modsim2025/files/J11.jorquera.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
S |
| Sandi S |
Combining catchment hydro-sedimentological models with wetland eco-geomorphological models to assess mangrove resilience to climate and land use changes in the Pacific Islands |
Jorquera E, Rodríguez JF, Saco PM, Quijano Baron JP, Breda A, Sandi S |
https://doi.org/10.36334/modsim2025.J11.jorquera |
https://mssanz.org.au/modsim2025/files/J11.jorquera.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
S |
| Brooks S |
Communicating climate information for adaptation through familiar frames |
Round V, Brooks S, Doble R, Dunlop M, Gao S, Gibbs M, Melbourne‑Thomas J, Mullis H, O’Sullivan J, Pritchard J, Sengupta A |
https://doi.org/10.36334/modsim2025.F03.round |
https://mssanz.org.au/modsim2025/files/F03.round.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
B |
| Doble R |
Communicating climate information for adaptation through familiar frames |
Round V, Brooks S, Doble R, Dunlop M, Gao S, Gibbs M, Melbourne‑Thomas J, Mullis H, O’Sullivan J, Pritchard J, Sengupta A |
https://doi.org/10.36334/modsim2025.F03.round |
https://mssanz.org.au/modsim2025/files/F03.round.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
D |
| Dunlop M |
Communicating climate information for adaptation through familiar frames |
Round V, Brooks S, Doble R, Dunlop M, Gao S, Gibbs M, Melbourne‑Thomas J, Mullis H, O’Sullivan J, Pritchard J, Sengupta A |
https://doi.org/10.36334/modsim2025.F03.round |
https://mssanz.org.au/modsim2025/files/F03.round.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
D |
| Gao S (Sicong) |
Communicating climate information for adaptation through familiar frames |
Round V, Brooks S, Doble R, Dunlop M, Gao S, Gibbs M, Melbourne‑Thomas J, Mullis H, O’Sullivan J, Pritchard J, Sengupta A |
https://doi.org/10.36334/modsim2025.F03.round |
https://mssanz.org.au/modsim2025/files/F03.round.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
G |
| Gibbs MS |
Communicating climate information for adaptation through familiar frames |
Round V, Brooks S, Doble R, Dunlop M, Gao S, Gibbs M, Melbourne‑Thomas J, Mullis H, O’Sullivan J, Pritchard J, Sengupta A |
https://doi.org/10.36334/modsim2025.F03.round |
https://mssanz.org.au/modsim2025/files/F03.round.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
G |
| Melbourne-Thomas J |
Communicating climate information for adaptation through familiar frames |
Round V, Brooks S, Doble R, Dunlop M, Gao S, Gibbs M, Melbourne‑Thomas J, Mullis H, O’Sullivan J, Pritchard J, Sengupta A |
https://doi.org/10.36334/modsim2025.F03.round |
https://mssanz.org.au/modsim2025/files/F03.round.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
M |
| Mullis H |
Communicating climate information for adaptation through familiar frames |
Round V, Brooks S, Doble R, Dunlop M, Gao S, Gibbs M, Melbourne‑Thomas J, Mullis H, O’Sullivan J, Pritchard J, Sengupta A |
https://doi.org/10.36334/modsim2025.F03.round |
https://mssanz.org.au/modsim2025/files/F03.round.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
M |
| O’Sullivan J |
Communicating climate information for adaptation through familiar frames |
Round V, Brooks S, Doble R, Dunlop M, Gao S, Gibbs M, Melbourne‑Thomas J, Mullis H, O’Sullivan J, Pritchard J, Sengupta A |
https://doi.org/10.36334/modsim2025.F03.round |
https://mssanz.org.au/modsim2025/files/F03.round.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
O |
| Pritchard J |
Communicating climate information for adaptation through familiar frames |
Round V, Brooks S, Doble R, Dunlop M, Gao S, Gibbs M, Melbourne‑Thomas J, Mullis H, O’Sullivan J, Pritchard J, Sengupta A |
https://doi.org/10.36334/modsim2025.F03.round |
https://mssanz.org.au/modsim2025/files/F03.round.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
P |
| Round V |
Communicating climate information for adaptation through familiar frames |
Round V, Brooks S, Doble R, Dunlop M, Gao S, Gibbs M, Melbourne‑Thomas J, Mullis H, O’Sullivan J, Pritchard J, Sengupta A |
https://doi.org/10.36334/modsim2025.F03.round |
https://mssanz.org.au/modsim2025/files/F03.round.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
R |
| Sengupta A |
Communicating climate information for adaptation through familiar frames |
Round V, Brooks S, Doble R, Dunlop M, Gao S, Gibbs M, Melbourne‑Thomas J, Mullis H, O’Sullivan J, Pritchard J, Sengupta A |
https://doi.org/10.36334/modsim2025.F03.round |
https://mssanz.org.au/modsim2025/files/F03.round.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
S |
| Bishop T |
Comparing machine learning and process-based models for predicting wheat flowering timing |
Ledvinka HD, Richetti J, Bishop T, Filippi P |
https://doi.org/10.36334/modsim2025.F11.ledvinka |
https://mssanz.org.au/modsim2025/files/F11.ledvinka.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
B |
| Filippi P |
Comparing machine learning and process-based models for predicting wheat flowering timing |
Ledvinka HD, Richetti J, Bishop T, Filippi P |
https://doi.org/10.36334/modsim2025.F11.ledvinka |
https://mssanz.org.au/modsim2025/files/F11.ledvinka.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
F |
| Ledvinka HD |
Comparing machine learning and process-based models for predicting wheat flowering timing |
Ledvinka HD, Richetti J, Bishop T, Filippi P |
https://doi.org/10.36334/modsim2025.F11.ledvinka |
https://mssanz.org.au/modsim2025/files/F11.ledvinka.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
L |
| Richetti J |
Comparing machine learning and process-based models for predicting wheat flowering timing |
Ledvinka HD, Richetti J, Bishop T, Filippi P |
https://doi.org/10.36334/modsim2025.F11.ledvinka |
https://mssanz.org.au/modsim2025/files/F11.ledvinka.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
R |
| Grey V |
Comparing methods for assessing suspended sediment and turbidity trends in rivers: A Melbourne example |
Lintern A, Grey V, Kemp A |
https://doi.org/10.36334/modsim2025.L04.lintern |
https://mssanz.org.au/modsim2025/files/L04.lintern.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
G |
| Kemp A |
Comparing methods for assessing suspended sediment and turbidity trends in rivers: A Melbourne example |
Lintern A, Grey V, Kemp A |
https://doi.org/10.36334/modsim2025.L04.lintern |
https://mssanz.org.au/modsim2025/files/L04.lintern.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
K |
| Lintern A |
Comparing methods for assessing suspended sediment and turbidity trends in rivers: A Melbourne example |
Lintern A, Grey V, Kemp A |
https://doi.org/10.36334/modsim2025.L04.lintern |
https://mssanz.org.au/modsim2025/files/L04.lintern.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
L |
| Boland J |
Comparing methods to reconstruct river cross sections from LiDAR DEMs for improved flood plain modelling |
Karunanayake C, Hewa GA, Peters S, Kemp D, Boland J, Walpita Gamage S, Myers B |
https://doi.org/10.36334/modsim2025.G06.karunanayake |
https://mssanz.org.au/modsim2025/files/G06.karunanayake.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
B |
| Hewa GA |
Comparing methods to reconstruct river cross sections from LiDAR DEMs for improved flood plain modelling |
Karunanayake C, Hewa GA, Peters S, Kemp D, Boland J, Walpita Gamage S, Myers B |
https://doi.org/10.36334/modsim2025.G06.karunanayake |
https://mssanz.org.au/modsim2025/files/G06.karunanayake.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
H |
| Karunanayake C |
Comparing methods to reconstruct river cross sections from LiDAR DEMs for improved flood plain modelling |
Karunanayake C, Hewa GA, Peters S, Kemp D, Boland J, Walpita Gamage S, Myers B |
https://doi.org/10.36334/modsim2025.G06.karunanayake |
https://mssanz.org.au/modsim2025/files/G06.karunanayake.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
K |
| Kemp D (David) |
Comparing methods to reconstruct river cross sections from LiDAR DEMs for improved flood plain modelling |
Karunanayake C, Hewa GA, Peters S, Kemp D, Boland J, Walpita Gamage S, Myers B |
https://doi.org/10.36334/modsim2025.G06.karunanayake |
https://mssanz.org.au/modsim2025/files/G06.karunanayake.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
K |
| Myers B |
Comparing methods to reconstruct river cross sections from LiDAR DEMs for improved flood plain modelling |
Karunanayake C, Hewa GA, Peters S, Kemp D, Boland J, Walpita Gamage S, Myers B |
https://doi.org/10.36334/modsim2025.G06.karunanayake |
https://mssanz.org.au/modsim2025/files/G06.karunanayake.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
M |
| Peters S |
Comparing methods to reconstruct river cross sections from LiDAR DEMs for improved flood plain modelling |
Karunanayake C, Hewa GA, Peters S, Kemp D, Boland J, Walpita Gamage S, Myers B |
https://doi.org/10.36334/modsim2025.G06.karunanayake |
https://mssanz.org.au/modsim2025/files/G06.karunanayake.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
P |
| Walpita Gamage S |
Comparing methods to reconstruct river cross sections from LiDAR DEMs for improved flood plain modelling |
Karunanayake C, Hewa GA, Peters S, Kemp D, Boland J, Walpita Gamage S, Myers B |
https://doi.org/10.36334/modsim2025.G06.karunanayake |
https://mssanz.org.au/modsim2025/files/G06.karunanayake.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
W |
| Booker D |
Comparing the performances of a physically based hydrologic model and machine learning model in the Ashburton catchment, New Zealand |
Yang J, Miura Y, Sawada Y, He Q, Rajanayaka C, Booker D, Oki T, Liu P, Croke B |
https://doi.org/10.36334/modsim2025.J09.yang |
https://mssanz.org.au/modsim2025/files/J09.yang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
B |
| Croke B |
Comparing the performances of a physically based hydrologic model and machine learning model in the Ashburton catchment, New Zealand |
Yang J, Miura Y, Sawada Y, He Q, Rajanayaka C, Booker D, Oki T, Liu P, Croke B |
https://doi.org/10.36334/modsim2025.J09.yang |
https://mssanz.org.au/modsim2025/files/J09.yang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
C |
| He Q |
Comparing the performances of a physically based hydrologic model and machine learning model in the Ashburton catchment, New Zealand |
Yang J, Miura Y, Sawada Y, He Q, Rajanayaka C, Booker D, Oki T, Liu P, Croke B |
https://doi.org/10.36334/modsim2025.J09.yang |
https://mssanz.org.au/modsim2025/files/J09.yang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
H |
| Liu P (Pan) |
Comparing the performances of a physically based hydrologic model and machine learning model in the Ashburton catchment, New Zealand |
Yang J, Miura Y, Sawada Y, He Q, Rajanayaka C, Booker D, Oki T, Liu P, Croke B |
https://doi.org/10.36334/modsim2025.J09.yang |
https://mssanz.org.au/modsim2025/files/J09.yang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
L |
| Miura Y |
Comparing the performances of a physically based hydrologic model and machine learning model in the Ashburton catchment, New Zealand |
Yang J, Miura Y, Sawada Y, He Q, Rajanayaka C, Booker D, Oki T, Liu P, Croke B |
https://doi.org/10.36334/modsim2025.J09.yang |
https://mssanz.org.au/modsim2025/files/J09.yang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
M |
| Oki T |
Comparing the performances of a physically based hydrologic model and machine learning model in the Ashburton catchment, New Zealand |
Yang J, Miura Y, Sawada Y, He Q, Rajanayaka C, Booker D, Oki T, Liu P, Croke B |
https://doi.org/10.36334/modsim2025.J09.yang |
https://mssanz.org.au/modsim2025/files/J09.yang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
O |
| Rajanayaka C |
Comparing the performances of a physically based hydrologic model and machine learning model in the Ashburton catchment, New Zealand |
Yang J, Miura Y, Sawada Y, He Q, Rajanayaka C, Booker D, Oki T, Liu P, Croke B |
https://doi.org/10.36334/modsim2025.J09.yang |
https://mssanz.org.au/modsim2025/files/J09.yang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
R |
| Sawada Y |
Comparing the performances of a physically based hydrologic model and machine learning model in the Ashburton catchment, New Zealand |
Yang J, Miura Y, Sawada Y, He Q, Rajanayaka C, Booker D, Oki T, Liu P, Croke B |
https://doi.org/10.36334/modsim2025.J09.yang |
https://mssanz.org.au/modsim2025/files/J09.yang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
S |
| Yang J (Jing) |
Comparing the performances of a physically based hydrologic model and machine learning model in the Ashburton catchment, New Zealand |
Yang J, Miura Y, Sawada Y, He Q, Rajanayaka C, Booker D, Oki T, Liu P, Croke B |
https://doi.org/10.36334/modsim2025.J09.yang |
https://mssanz.org.au/modsim2025/files/J09.yang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
Y |
| Dhumale L |
Complexity of river water quality parameters using a nonlinear dynamic approach |
Dhumale L, Maheshwari B, Walker G |
https://doi.org/10.36334/modsim2025.L01.dhumale |
https://mssanz.org.au/modsim2025/files/L01.dhumale.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
D |
| Maheshwari B |
Complexity of river water quality parameters using a nonlinear dynamic approach |
Dhumale L, Maheshwari B, Walker G |
https://doi.org/10.36334/modsim2025.L01.dhumale |
https://mssanz.org.au/modsim2025/files/L01.dhumale.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
M |
| Walker G |
Complexity of river water quality parameters using a nonlinear dynamic approach |
Dhumale L, Maheshwari B, Walker G |
https://doi.org/10.36334/modsim2025.L01.dhumale |
https://mssanz.org.au/modsim2025/files/L01.dhumale.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
W |
| Bradhurst RA |
Computational modelling of black swan bioterror events |
Bradhurst RA |
https://doi.org/10.36334/modsim2025.H05.bradhurst |
https://mssanz.org.au/modsim2025/files/H05.bradhurst.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
B |
| Rojas AM |
Conceptualisation of simulation platform for assessing residential construction code impacts |
Rojas A M, Wang C‑H, Wright A |
https://doi.org/10.36334/modsim2025.E01.rojas |
https://mssanz.org.au/modsim2025/files/E01.rojas.pdf |
E |
Energy, integrated infrastructure and urban planning |
E1 |
Tools for the Energy Transition |
R |
| Wang C‑H (Chi-Hsiang) |
Conceptualisation of simulation platform for assessing residential construction code impacts |
Rojas A M, Wang C‑H, Wright A |
https://doi.org/10.36334/modsim2025.E01.rojas |
https://mssanz.org.au/modsim2025/files/E01.rojas.pdf |
E |
Energy, integrated infrastructure and urban planning |
E1 |
Tools for the Energy Transition |
W |
| Wright A |
Conceptualisation of simulation platform for assessing residential construction code impacts |
Rojas A M, Wang C‑H, Wright A |
https://doi.org/10.36334/modsim2025.E01.rojas |
https://mssanz.org.au/modsim2025/files/E01.rojas.pdf |
E |
Energy, integrated infrastructure and urban planning |
E1 |
Tools for the Energy Transition |
W |
| Athukorala R |
Confronting data leakage in environmental model optimisation |
Vervoort RW, Kapoor A, Chandra R, Athukorala R |
https://doi.org/10.36334/modsim2025.C07.vervoort |
https://mssanz.org.au/modsim2025/files/C07.vervoort.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
A |
| Chandra R |
Confronting data leakage in environmental model optimisation |
Vervoort RW, Kapoor A, Chandra R, Athukorala R |
https://doi.org/10.36334/modsim2025.C07.vervoort |
https://mssanz.org.au/modsim2025/files/C07.vervoort.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
C |
| Kapoor A |
Confronting data leakage in environmental model optimisation |
Vervoort RW, Kapoor A, Chandra R, Athukorala R |
https://doi.org/10.36334/modsim2025.C07.vervoort |
https://mssanz.org.au/modsim2025/files/C07.vervoort.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
K |
| Vervoort RW |
Confronting data leakage in environmental model optimisation |
Vervoort RW, Kapoor A, Chandra R, Athukorala R |
https://doi.org/10.36334/modsim2025.C07.vervoort |
https://mssanz.org.au/modsim2025/files/C07.vervoort.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
V |
| Beveridge C |
Connecting a prior-knowledge network with APSIM: Towards breeding by design |
Mitsanis C, Fortuna N, Hammer G, Van Oosteroom E, Beveridge C |
https://doi.org/10.36334/modsim2025.B02.mitsanis |
https://mssanz.org.au/modsim2025/files/B02.mitsanis.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
B |
| Fortuna N |
Connecting a prior-knowledge network with APSIM: Towards breeding by design |
Mitsanis C, Fortuna N, Hammer G, Van Oosteroom E, Beveridge C |
https://doi.org/10.36334/modsim2025.B02.mitsanis |
https://mssanz.org.au/modsim2025/files/B02.mitsanis.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
F |
| Hammer G |
Connecting a prior-knowledge network with APSIM: Towards breeding by design |
Mitsanis C, Fortuna N, Hammer G, Van Oosteroom E, Beveridge C |
https://doi.org/10.36334/modsim2025.B02.mitsanis |
https://mssanz.org.au/modsim2025/files/B02.mitsanis.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Mitsanis C |
Connecting a prior-knowledge network with APSIM: Towards breeding by design |
Mitsanis C, Fortuna N, Hammer G, Van Oosteroom E, Beveridge C |
https://doi.org/10.36334/modsim2025.B02.mitsanis |
https://mssanz.org.au/modsim2025/files/B02.mitsanis.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
M |
| Van Oosteroom E |
Connecting a prior-knowledge network with APSIM: Towards breeding by design |
Mitsanis C, Fortuna N, Hammer G, Van Oosteroom E, Beveridge C |
https://doi.org/10.36334/modsim2025.B02.mitsanis |
https://mssanz.org.au/modsim2025/files/B02.mitsanis.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
V |
| Cuddy SM |
Consolidating Flow-MER modelling tools and metadata for national environmental reporting |
Rezvani M, Cuddy S M, Hou X |
https://doi.org/10.36334/modsim2025.C05.rezvani |
https://mssanz.org.au/modsim2025/files/C05.rezvani.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
C |
| Hou X (Xinyu) |
Consolidating Flow-MER modelling tools and metadata for national environmental reporting |
Rezvani M, Cuddy S M, Hou X |
https://doi.org/10.36334/modsim2025.C05.rezvani |
https://mssanz.org.au/modsim2025/files/C05.rezvani.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
H |
| Rezvani M |
Consolidating Flow-MER modelling tools and metadata for national environmental reporting |
Rezvani M, Cuddy S M, Hou X |
https://doi.org/10.36334/modsim2025.C05.rezvani |
https://mssanz.org.au/modsim2025/files/C05.rezvani.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
R |
| Kim S (Seokhyeon) |
Constrained negentropy optimisation (CoNE-opt): leveraging independent component analysis for the fusion of satellite-derived data products |
Shah S, Liu Y, Kim S, Sharma A |
https://doi.org/10.36334/modsim2025.J10.shah |
https://mssanz.org.au/modsim2025/files/J10.shah.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
K |
| Liu Y (Yi) |
Constrained negentropy optimisation (CoNE-opt): leveraging independent component analysis for the fusion of satellite-derived data products |
Shah S, Liu Y, Kim S, Sharma A |
https://doi.org/10.36334/modsim2025.J10.shah |
https://mssanz.org.au/modsim2025/files/J10.shah.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
L |
| Shah S |
Constrained negentropy optimisation (CoNE-opt): leveraging independent component analysis for the fusion of satellite-derived data products |
Shah S, Liu Y, Kim S, Sharma A |
https://doi.org/10.36334/modsim2025.J10.shah |
https://mssanz.org.au/modsim2025/files/J10.shah.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
S |
| Sharma A |
Constrained negentropy optimisation (CoNE-opt): leveraging independent component analysis for the fusion of satellite-derived data products |
Shah S, Liu Y, Kim S, Sharma A |
https://doi.org/10.36334/modsim2025.J10.shah |
https://mssanz.org.au/modsim2025/files/J10.shah.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
S |
| Galbadrakh A |
Construction of an automatic driver mdoelling system based on fuzzy inference from vehicle trajectory data |
Li L, Galbadrakh A, Namekawa M |
https://doi.org/10.36334/modsim2025.C04.li |
https://mssanz.org.au/modsim2025/files/C04.li.pdf |
C |
Computer science and engineering |
C4 |
Open and intelligent modeling and simulation |
G |
| Li L |
Construction of an automatic driver mdoelling system based on fuzzy inference from vehicle trajectory data |
Li L, Galbadrakh A, Namekawa M |
https://doi.org/10.36334/modsim2025.C04.li |
https://mssanz.org.au/modsim2025/files/C04.li.pdf |
C |
Computer science and engineering |
C4 |
Open and intelligent modeling and simulation |
L |
| Namekawa M |
Construction of an automatic driver mdoelling system based on fuzzy inference from vehicle trajectory data |
Li L, Galbadrakh A, Namekawa M |
https://doi.org/10.36334/modsim2025.C04.li |
https://mssanz.org.au/modsim2025/files/C04.li.pdf |
C |
Computer science and engineering |
C4 |
Open and intelligent modeling and simulation |
N |
| Borchers‑Arriagada N |
Continental-scale machine learning classification of fire smoke pollution events for health research in Australia, 2001-2020 |
Gopi K, Shao J, Morgan G, Yuen C, Borchers‑Arriagada N, van Buskirk J, Jegasothy E, Hanigan I |
https://doi.org/10.36334/modsim2025.G07.gopi |
https://mssanz.org.au/modsim2025/files/G07.gopi.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
B |
| Gopi K |
Continental-scale machine learning classification of fire smoke pollution events for health research in Australia, 2001-2020 |
Gopi K, Shao J, Morgan G, Yuen C, Borchers‑Arriagada N, van Buskirk J, Jegasothy E, Hanigan I |
https://doi.org/10.36334/modsim2025.G07.gopi |
https://mssanz.org.au/modsim2025/files/G07.gopi.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
G |
| Hanigan I |
Continental-scale machine learning classification of fire smoke pollution events for health research in Australia, 2001-2020 |
Gopi K, Shao J, Morgan G, Yuen C, Borchers‑Arriagada N, van Buskirk J, Jegasothy E, Hanigan I |
https://doi.org/10.36334/modsim2025.G07.gopi |
https://mssanz.org.au/modsim2025/files/G07.gopi.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
H |
| Jegasothy E |
Continental-scale machine learning classification of fire smoke pollution events for health research in Australia, 2001-2020 |
Gopi K, Shao J, Morgan G, Yuen C, Borchers‑Arriagada N, van Buskirk J, Jegasothy E, Hanigan I |
https://doi.org/10.36334/modsim2025.G07.gopi |
https://mssanz.org.au/modsim2025/files/G07.gopi.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
J |
| Morgan G |
Continental-scale machine learning classification of fire smoke pollution events for health research in Australia, 2001-2020 |
Gopi K, Shao J, Morgan G, Yuen C, Borchers‑Arriagada N, van Buskirk J, Jegasothy E, Hanigan I |
https://doi.org/10.36334/modsim2025.G07.gopi |
https://mssanz.org.au/modsim2025/files/G07.gopi.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
M |
| Shao J |
Continental-scale machine learning classification of fire smoke pollution events for health research in Australia, 2001-2020 |
Gopi K, Shao J, Morgan G, Yuen C, Borchers‑Arriagada N, van Buskirk J, Jegasothy E, Hanigan I |
https://doi.org/10.36334/modsim2025.G07.gopi |
https://mssanz.org.au/modsim2025/files/G07.gopi.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
S |
| van Buskirk J |
Continental-scale machine learning classification of fire smoke pollution events for health research in Australia, 2001-2020 |
Gopi K, Shao J, Morgan G, Yuen C, Borchers‑Arriagada N, van Buskirk J, Jegasothy E, Hanigan I |
https://doi.org/10.36334/modsim2025.G07.gopi |
https://mssanz.org.au/modsim2025/files/G07.gopi.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
v |
| Yuen C |
Continental-scale machine learning classification of fire smoke pollution events for health research in Australia, 2001-2020 |
Gopi K, Shao J, Morgan G, Yuen C, Borchers‑Arriagada N, van Buskirk J, Jegasothy E, Hanigan I |
https://doi.org/10.36334/modsim2025.G07.gopi |
https://mssanz.org.au/modsim2025/files/G07.gopi.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
Y |
| Guan H |
Continuous water potential monitoring for soil-plant continuum hydraulic parameterisation and simulation |
Guan H |
https://doi.org/10.36334/modsim2025.J03.guan |
https://mssanz.org.au/modsim2025/files/J03.guan.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
G |
| Biggs J |
Correlating rainfall and simulated pasture growth for developing sustainable grazing insurance products in northern Australia |
Ly H, Thorburn P, Biggs J, Martin B, Everingham Y |
https://doi.org/10.36334/modsim2025.B05.ly |
https://mssanz.org.au/modsim2025/files/B05.ly.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
B |
| Everingham Y |
Correlating rainfall and simulated pasture growth for developing sustainable grazing insurance products in northern Australia |
Ly H, Thorburn P, Biggs J, Martin B, Everingham Y |
https://doi.org/10.36334/modsim2025.B05.ly |
https://mssanz.org.au/modsim2025/files/B05.ly.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
E |
| Ly H |
Correlating rainfall and simulated pasture growth for developing sustainable grazing insurance products in northern Australia |
Ly H, Thorburn P, Biggs J, Martin B, Everingham Y |
https://doi.org/10.36334/modsim2025.B05.ly |
https://mssanz.org.au/modsim2025/files/B05.ly.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
L |
| Martin B |
Correlating rainfall and simulated pasture growth for developing sustainable grazing insurance products in northern Australia |
Ly H, Thorburn P, Biggs J, Martin B, Everingham Y |
https://doi.org/10.36334/modsim2025.B05.ly |
https://mssanz.org.au/modsim2025/files/B05.ly.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
M |
| Thorburn P |
Correlating rainfall and simulated pasture growth for developing sustainable grazing insurance products in northern Australia |
Ly H, Thorburn P, Biggs J, Martin B, Everingham Y |
https://doi.org/10.36334/modsim2025.B05.ly |
https://mssanz.org.au/modsim2025/files/B05.ly.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
T |
| Li X (Xiaojuan) |
Correlations of land surface temperature with climatic and oceanic factors in China (1952–2022) |
Zhang Y, Li X, Yin L |
https://doi.org/10.36334/modsim2025.G02.zhang |
https://mssanz.org.au/modsim2025/files/G02.zhang.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
L |
| Yin L |
Correlations of land surface temperature with climatic and oceanic factors in China (1952–2022) |
Zhang Y, Li X, Yin L |
https://doi.org/10.36334/modsim2025.G02.zhang |
https://mssanz.org.au/modsim2025/files/G02.zhang.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Y |
| Zhang Y (Yunfei) |
Correlations of land surface temperature with climatic and oceanic factors in China (1952–2022) |
Zhang Y, Li X, Yin L |
https://doi.org/10.36334/modsim2025.G02.zhang |
https://mssanz.org.au/modsim2025/files/G02.zhang.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Z |
| Arief V |
Cost-effective agronomic practices could unlock Australian wheat yield potential (INVITED SPEAKER) |
Li S, Zheng B, Hu P, Fernandez J, Lei Y, James C, Chen Q, Arief V, Chapman S |
https://doi.org/10.36334/modsim2025.B08.li |
https://mssanz.org.au/modsim2025/files/B08.li.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
A |
| Chapman S |
Cost-effective agronomic practices could unlock Australian wheat yield potential (INVITED SPEAKER) |
Li S, Zheng B, Hu P, Fernandez J, Lei Y, James C, Chen Q, Arief V, Chapman S |
https://doi.org/10.36334/modsim2025.B08.li |
https://mssanz.org.au/modsim2025/files/B08.li.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
C |
| Chen Q (Qiaomin) |
Cost-effective agronomic practices could unlock Australian wheat yield potential (INVITED SPEAKER) |
Li S, Zheng B, Hu P, Fernandez J, Lei Y, James C, Chen Q, Arief V, Chapman S |
https://doi.org/10.36334/modsim2025.B08.li |
https://mssanz.org.au/modsim2025/files/B08.li.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
C |
| Fernandez J |
Cost-effective agronomic practices could unlock Australian wheat yield potential (INVITED SPEAKER) |
Li S, Zheng B, Hu P, Fernandez J, Lei Y, James C, Chen Q, Arief V, Chapman S |
https://doi.org/10.36334/modsim2025.B08.li |
https://mssanz.org.au/modsim2025/files/B08.li.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
F |
| Hu P (Pengcheng) |
Cost-effective agronomic practices could unlock Australian wheat yield potential (INVITED SPEAKER) |
Li S, Zheng B, Hu P, Fernandez J, Lei Y, James C, Chen Q, Arief V, Chapman S |
https://doi.org/10.36334/modsim2025.B08.li |
https://mssanz.org.au/modsim2025/files/B08.li.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
H |
| James C |
Cost-effective agronomic practices could unlock Australian wheat yield potential (INVITED SPEAKER) |
Li S, Zheng B, Hu P, Fernandez J, Lei Y, James C, Chen Q, Arief V, Chapman S |
https://doi.org/10.36334/modsim2025.B08.li |
https://mssanz.org.au/modsim2025/files/B08.li.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
J |
| Lei Y (Yeming) |
Cost-effective agronomic practices could unlock Australian wheat yield potential (INVITED SPEAKER) |
Li S, Zheng B, Hu P, Fernandez J, Lei Y, James C, Chen Q, Arief V, Chapman S |
https://doi.org/10.36334/modsim2025.B08.li |
https://mssanz.org.au/modsim2025/files/B08.li.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
L |
| Li S (Sivi) |
Cost-effective agronomic practices could unlock Australian wheat yield potential (INVITED SPEAKER) |
Li S, Zheng B, Hu P, Fernandez J, Lei Y, James C, Chen Q, Arief V, Chapman S |
https://doi.org/10.36334/modsim2025.B08.li |
https://mssanz.org.au/modsim2025/files/B08.li.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
L |
| Zheng B (Bangyou) |
Cost-effective agronomic practices could unlock Australian wheat yield potential (INVITED SPEAKER) |
Li S, Zheng B, Hu P, Fernandez J, Lei Y, James C, Chen Q, Arief V, Chapman S |
https://doi.org/10.36334/modsim2025.B08.li |
https://mssanz.org.au/modsim2025/files/B08.li.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
Z |
| Chen N (Nuo) |
Cost-effectiveness of lung cancer screening strategies in China: Markov model and discrete event simulation comparison |
Lyu J, Chen N |
https://doi.org/10.36334/modsim2025.H05.lyu |
https://mssanz.org.au/modsim2025/files/H05.lyu.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
C |
| Lyu J (Juntao) |
Cost-effectiveness of lung cancer screening strategies in China: Markov model and discrete event simulation comparison |
Lyu J, Chen N |
https://doi.org/10.36334/modsim2025.H05.lyu |
https://mssanz.org.au/modsim2025/files/H05.lyu.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
L |
| Hipsey MR |
Coupling MODFLOW and GLM-AED for integrated simulation of lake–aquifer interactions |
Vergara‑Sáez C, Hipsey MR |
https://doi.org/10.36334/modsim2025.L02.vergarasaez |
https://mssanz.org.au/modsim2025/files/L02.vergarasaez.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
H |
| Vergara‑Sáez C |
Coupling MODFLOW and GLM-AED for integrated simulation of lake–aquifer interactions |
Vergara‑Sáez C, Hipsey MR |
https://doi.org/10.36334/modsim2025.L02.vergarasaez |
https://mssanz.org.au/modsim2025/files/L02.vergarasaez.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
V |
| Schaerf TM |
Data-driven models of collective motion derived directly from force maps |
Schaerf TM |
https://doi.org/10.36334/modsim2025.B09.schaerf |
https://mssanz.org.au/modsim2025/files/B09.schaerf.pdf |
B |
Biological systems |
B9 |
Advances in agent-based modelling and their statistical challenges in biological, ecological and agricultural systems |
S |
| Alikhani M |
Data-driven rolling forecasting for wind and solar generation: Evaluating statistical models across historical data lengths |
Alikhani M |
https://doi.org/10.36334/modsim2025.E04.alikhani |
https://mssanz.org.au/modsim2025/files/E04.alikhani.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
A |
| Bishop TFA |
Depth-resolved soil organic carbon estimation: a scalable approach |
van Kretschmar M, Filippi P, Karunaratne SB, Bishop TFA |
https://doi.org/10.36334/modsim2025.F13.vankretschmar |
https://mssanz.org.au/modsim2025/files/F13.vankretschmar.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
B |
| Filippi P |
Depth-resolved soil organic carbon estimation: a scalable approach |
van Kretschmar M, Filippi P, Karunaratne SB, Bishop TFA |
https://doi.org/10.36334/modsim2025.F13.vankretschmar |
https://mssanz.org.au/modsim2025/files/F13.vankretschmar.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
F |
| Karunaratne SB |
Depth-resolved soil organic carbon estimation: a scalable approach |
van Kretschmar M, Filippi P, Karunaratne SB, Bishop TFA |
https://doi.org/10.36334/modsim2025.F13.vankretschmar |
https://mssanz.org.au/modsim2025/files/F13.vankretschmar.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
K |
| van Kretschmar M |
Depth-resolved soil organic carbon estimation: a scalable approach |
van Kretschmar M, Filippi P, Karunaratne SB, Bishop TFA |
https://doi.org/10.36334/modsim2025.F13.vankretschmar |
https://mssanz.org.au/modsim2025/files/F13.vankretschmar.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
v |
| Abbass HA |
Descriptive and predictive modelling for professional darts |
Aly A, Abbass HA |
https://doi.org/10.36334/modsim2025.M01.aly |
https://mssanz.org.au/modsim2025/files/M01.aly.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
A |
| Aly A |
Descriptive and predictive modelling for professional darts |
Aly A, Abbass HA |
https://doi.org/10.36334/modsim2025.M01.aly |
https://mssanz.org.au/modsim2025/files/M01.aly.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
A |
| Balaburov E |
Design validation and verification for non-intrusive flight test instrumentation (NIFTI) using Model-Based Systems Engineering (MBSE) |
Pattarakunnan K, Bruce S, Balaburov E, Mancarella S |
https://doi.org/10.36334/modsim2025.C01.pattarakunnan |
https://mssanz.org.au/modsim2025/files/C01.pattarakunnan.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
B |
| Bruce S |
Design validation and verification for non-intrusive flight test instrumentation (NIFTI) using Model-Based Systems Engineering (MBSE) |
Pattarakunnan K, Bruce S, Balaburov E, Mancarella S |
https://doi.org/10.36334/modsim2025.C01.pattarakunnan |
https://mssanz.org.au/modsim2025/files/C01.pattarakunnan.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
B |
| Mancarella S |
Design validation and verification for non-intrusive flight test instrumentation (NIFTI) using Model-Based Systems Engineering (MBSE) |
Pattarakunnan K, Bruce S, Balaburov E, Mancarella S |
https://doi.org/10.36334/modsim2025.C01.pattarakunnan |
https://mssanz.org.au/modsim2025/files/C01.pattarakunnan.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
M |
| Pattarakunnan K |
Design validation and verification for non-intrusive flight test instrumentation (NIFTI) using Model-Based Systems Engineering (MBSE) |
Pattarakunnan K, Bruce S, Balaburov E, Mancarella S |
https://doi.org/10.36334/modsim2025.C01.pattarakunnan |
https://mssanz.org.au/modsim2025/files/C01.pattarakunnan.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
P |
| Campbell R |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
C |
| Crawford J |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
C |
| Flick L |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
F |
| Fraser G |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
F |
| Gerber C |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
G |
| Hawkins SG |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
H |
| Hughes CE |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
H |
| Kohlmann F |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
K |
| Leslie A |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
L |
| Noble W |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
N |
| Shu Y |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
S |
| Stobaus T |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
S |
| Suckow A |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
S |
| Theile M |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
T |
| Waltenberg K |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
W |
| Welti N |
Designing for reality: A bottom-up approach to data interoperability |
Welti N, Hawkins SG, Waltenberg K, Hughes CE, Shu Y, Campbell R, Gerber C, Crawford J, Suckow A, Leslie A, Fraser G, Stobaus T, Kohlmann F, Noble W, Theile M, Flick L |
https://doi.org/10.36334/modsim2025.C05.welti |
https://mssanz.org.au/modsim2025/files/C05.welti.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
W |
| Knowles D |
Designing personalized levodopa regimens using minimal inputs and hybrid simulation modelling |
Knowles D |
https://doi.org/10.36334/modsim2025.H02.knowles |
https://mssanz.org.au/modsim2025/files/H02.knowles.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
K |
| Corry PG (Paul) |
DesRail: a new discrete-event-simulation library for high-performance rail network simulations |
Corry PG |
https://doi.org/10.36334/modsim2025.M02.corry |
https://mssanz.org.au/modsim2025/files/M02.corry.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
C |
| Jiang J (Jipng) |
Detection and driving factor analysis of hypoxia in river estuarine zones by entropy methods |
Pang T, Xiong Y, Zhang X, Wang H, Jiang J |
https://doi.org/10.36334/modsim2025.L01.pang |
https://mssanz.org.au/modsim2025/files/L01.pang.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
J |
| Pang T (Tianrui) |
Detection and driving factor analysis of hypoxia in river estuarine zones by entropy methods |
Pang T, Xiong Y, Zhang X, Wang H, Jiang J |
https://doi.org/10.36334/modsim2025.L01.pang |
https://mssanz.org.au/modsim2025/files/L01.pang.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
P |
| Wang H (Hongjie) |
Detection and driving factor analysis of hypoxia in river estuarine zones by entropy methods |
Pang T, Xiong Y, Zhang X, Wang H, Jiang J |
https://doi.org/10.36334/modsim2025.L01.pang |
https://mssanz.org.au/modsim2025/files/L01.pang.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
W |
| Xiong Y (Ye) |
Detection and driving factor analysis of hypoxia in river estuarine zones by entropy methods |
Pang T, Xiong Y, Zhang X, Wang H, Jiang J |
https://doi.org/10.36334/modsim2025.L01.pang |
https://mssanz.org.au/modsim2025/files/L01.pang.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
X |
| Zhang X (Xiaoyu) |
Detection and driving factor analysis of hypoxia in river estuarine zones by entropy methods |
Pang T, Xiong Y, Zhang X, Wang H, Jiang J |
https://doi.org/10.36334/modsim2025.L01.pang |
https://mssanz.org.au/modsim2025/files/L01.pang.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
Z |
| Cu P |
Developing a Source model of the Upper Macquarie and Upper Coxs river systems |
Podger GM, Cu P, Trim A, Dutta D, Loonat N, Tang Y, Reyes R, Fonseka C |
https://doi.org/10.36334/modsim2025.J02.podger |
https://mssanz.org.au/modsim2025/files/J02.podger.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
C |
| Dutta D |
Developing a Source model of the Upper Macquarie and Upper Coxs river systems |
Podger GM, Cu P, Trim A, Dutta D, Loonat N, Tang Y, Reyes R, Fonseka C |
https://doi.org/10.36334/modsim2025.J02.podger |
https://mssanz.org.au/modsim2025/files/J02.podger.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
D |
| Fonseka C |
Developing a Source model of the Upper Macquarie and Upper Coxs river systems |
Podger GM, Cu P, Trim A, Dutta D, Loonat N, Tang Y, Reyes R, Fonseka C |
https://doi.org/10.36334/modsim2025.J02.podger |
https://mssanz.org.au/modsim2025/files/J02.podger.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
F |
| Loonat N |
Developing a Source model of the Upper Macquarie and Upper Coxs river systems |
Podger GM, Cu P, Trim A, Dutta D, Loonat N, Tang Y, Reyes R, Fonseka C |
https://doi.org/10.36334/modsim2025.J02.podger |
https://mssanz.org.au/modsim2025/files/J02.podger.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
L |
| Podger GM |
Developing a Source model of the Upper Macquarie and Upper Coxs river systems |
Podger GM, Cu P, Trim A, Dutta D, Loonat N, Tang Y, Reyes R, Fonseka C |
https://doi.org/10.36334/modsim2025.J02.podger |
https://mssanz.org.au/modsim2025/files/J02.podger.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
P |
| Reyes R |
Developing a Source model of the Upper Macquarie and Upper Coxs river systems |
Podger GM, Cu P, Trim A, Dutta D, Loonat N, Tang Y, Reyes R, Fonseka C |
https://doi.org/10.36334/modsim2025.J02.podger |
https://mssanz.org.au/modsim2025/files/J02.podger.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
R |
| Tang Y |
Developing a Source model of the Upper Macquarie and Upper Coxs river systems |
Podger GM, Cu P, Trim A, Dutta D, Loonat N, Tang Y, Reyes R, Fonseka C |
https://doi.org/10.36334/modsim2025.J02.podger |
https://mssanz.org.au/modsim2025/files/J02.podger.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
T |
| Trim A |
Developing a Source model of the Upper Macquarie and Upper Coxs river systems |
Podger GM, Cu P, Trim A, Dutta D, Loonat N, Tang Y, Reyes R, Fonseka C |
https://doi.org/10.36334/modsim2025.J02.podger |
https://mssanz.org.au/modsim2025/files/J02.podger.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
T |
| Cetin L |
Developing a water quality modelling toolkit: Load estimates in Port Phillip and Western Port catchments |
Kemp A, Cetin L, Grey V |
https://doi.org/10.36334/modsim2025.L01.kemp |
https://mssanz.org.au/modsim2025/files/L01.kemp.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
C |
| Grey V |
Developing a water quality modelling toolkit: Load estimates in Port Phillip and Western Port catchments |
Kemp A, Cetin L, Grey V |
https://doi.org/10.36334/modsim2025.L01.kemp |
https://mssanz.org.au/modsim2025/files/L01.kemp.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
G |
| Kemp A |
Developing a water quality modelling toolkit: Load estimates in Port Phillip and Western Port catchments |
Kemp A, Cetin L, Grey V |
https://doi.org/10.36334/modsim2025.L01.kemp |
https://mssanz.org.au/modsim2025/files/L01.kemp.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
K |
| Bell L |
Developing frost and heat stress damage functions to quantify yield loss for canola and wheat with APSIM |
Hu P, He D, Zheng B, Whish J, Kirkegaard J, Bell L, Lilley J |
https://doi.org/10.36334/modsim2025.B02.hu |
https://mssanz.org.au/modsim2025/files/B02.hu.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
B |
| He D |
Developing frost and heat stress damage functions to quantify yield loss for canola and wheat with APSIM |
Hu P, He D, Zheng B, Whish J, Kirkegaard J, Bell L, Lilley J |
https://doi.org/10.36334/modsim2025.B02.hu |
https://mssanz.org.au/modsim2025/files/B02.hu.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Hu P (Pengcheng) |
Developing frost and heat stress damage functions to quantify yield loss for canola and wheat with APSIM |
Hu P, He D, Zheng B, Whish J, Kirkegaard J, Bell L, Lilley J |
https://doi.org/10.36334/modsim2025.B02.hu |
https://mssanz.org.au/modsim2025/files/B02.hu.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Kirkegaard J |
Developing frost and heat stress damage functions to quantify yield loss for canola and wheat with APSIM |
Hu P, He D, Zheng B, Whish J, Kirkegaard J, Bell L, Lilley J |
https://doi.org/10.36334/modsim2025.B02.hu |
https://mssanz.org.au/modsim2025/files/B02.hu.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
K |
| Lilley J |
Developing frost and heat stress damage functions to quantify yield loss for canola and wheat with APSIM |
Hu P, He D, Zheng B, Whish J, Kirkegaard J, Bell L, Lilley J |
https://doi.org/10.36334/modsim2025.B02.hu |
https://mssanz.org.au/modsim2025/files/B02.hu.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
L |
| Whish J |
Developing frost and heat stress damage functions to quantify yield loss for canola and wheat with APSIM |
Hu P, He D, Zheng B, Whish J, Kirkegaard J, Bell L, Lilley J |
https://doi.org/10.36334/modsim2025.B02.hu |
https://mssanz.org.au/modsim2025/files/B02.hu.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
W |
| Zheng B (Bangyou) |
Developing frost and heat stress damage functions to quantify yield loss for canola and wheat with APSIM |
Hu P, He D, Zheng B, Whish J, Kirkegaard J, Bell L, Lilley J |
https://doi.org/10.36334/modsim2025.B02.hu |
https://mssanz.org.au/modsim2025/files/B02.hu.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
Z |
| Prasain S |
Developing of integrated model to evaluate the sustainability of climate smart and drought resilience agricultural adaptation technologies concerning water and food security in Australia |
Prasain S |
https://doi.org/10.36334/modsim2025.B07.prasain |
https://mssanz.org.au/modsim2025/files/B07.prasain.pdf |
B |
Biological systems |
B7 |
Optimising farming systems to improve climate resilience and sustainability under water-constraint environments |
P |
| Hughes JD |
Development and evaluation of "climate-robust" rainfall runoff model parameter libraries |
Hughes JD, Kim SSH |
https://doi.org/10.36334/modsim2025.J03.hughes |
https://mssanz.org.au/modsim2025/files/J03.hughes.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
H |
| Kim SSH |
Development and evaluation of "climate-robust" rainfall runoff model parameter libraries |
Hughes JD, Kim SSH |
https://doi.org/10.36334/modsim2025.J03.hughes |
https://mssanz.org.au/modsim2025/files/J03.hughes.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
K |
| Antille DL |
Development and evaluation of a Taro Model within the APSIM plant modelling framework |
Beletse YG, Prasad VD, Sachan H, Krishna D, Crimp SJ, Antille DL |
https://doi.org/10.36334/modsim2025.B02.beletse |
https://mssanz.org.au/modsim2025/files/B02.beletse.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
A |
| Beletse YG |
Development and evaluation of a Taro Model within the APSIM plant modelling framework |
Beletse YG, Prasad VD, Sachan H, Krishna D, Crimp SJ, Antille DL |
https://doi.org/10.36334/modsim2025.B02.beletse |
https://mssanz.org.au/modsim2025/files/B02.beletse.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
B |
| Crimp SJ |
Development and evaluation of a Taro Model within the APSIM plant modelling framework |
Beletse YG, Prasad VD, Sachan H, Krishna D, Crimp SJ, Antille DL |
https://doi.org/10.36334/modsim2025.B02.beletse |
https://mssanz.org.au/modsim2025/files/B02.beletse.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
C |
| Krishna D |
Development and evaluation of a Taro Model within the APSIM plant modelling framework |
Beletse YG, Prasad VD, Sachan H, Krishna D, Crimp SJ, Antille DL |
https://doi.org/10.36334/modsim2025.B02.beletse |
https://mssanz.org.au/modsim2025/files/B02.beletse.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
K |
| Prasad VD |
Development and evaluation of a Taro Model within the APSIM plant modelling framework |
Beletse YG, Prasad VD, Sachan H, Krishna D, Crimp SJ, Antille DL |
https://doi.org/10.36334/modsim2025.B02.beletse |
https://mssanz.org.au/modsim2025/files/B02.beletse.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
P |
| Sachan H |
Development and evaluation of a Taro Model within the APSIM plant modelling framework |
Beletse YG, Prasad VD, Sachan H, Krishna D, Crimp SJ, Antille DL |
https://doi.org/10.36334/modsim2025.B02.beletse |
https://mssanz.org.au/modsim2025/files/B02.beletse.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
S |
| Alzubaidi S |
Development of an agent-based model for movement and foraging of sheep flock |
Welch M, Alzubaidi S, Schaerf T |
https://doi.org/10.36334/modsim2025.B09.welch |
https://mssanz.org.au/modsim2025/files/B09.welch.pdf |
B |
Biological systems |
B9 |
Advances in agent-based modelling and their statistical challenges in biological, ecological and agricultural systems |
A |
| Schaerf T |
Development of an agent-based model for movement and foraging of sheep flock |
Welch M, Alzubaidi S, Schaerf T |
https://doi.org/10.36334/modsim2025.B09.welch |
https://mssanz.org.au/modsim2025/files/B09.welch.pdf |
B |
Biological systems |
B9 |
Advances in agent-based modelling and their statistical challenges in biological, ecological and agricultural systems |
S |
| Welch M |
Development of an agent-based model for movement and foraging of sheep flock |
Welch M, Alzubaidi S, Schaerf T |
https://doi.org/10.36334/modsim2025.B09.welch |
https://mssanz.org.au/modsim2025/files/B09.welch.pdf |
B |
Biological systems |
B9 |
Advances in agent-based modelling and their statistical challenges in biological, ecological and agricultural systems |
W |
| Dykman J |
Development of an Australia-wide extreme storms database for hydrologic risk assessments |
Dykman J, Kalloniatis A, Gallant H |
https://doi.org/10.36334/modsim2025.J06.dykman |
https://mssanz.org.au/modsim2025/files/J06.dykman.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
D |
| Gallant H |
Development of an Australia-wide extreme storms database for hydrologic risk assessments |
Dykman J, Kalloniatis A, Gallant H |
https://doi.org/10.36334/modsim2025.J06.dykman |
https://mssanz.org.au/modsim2025/files/J06.dykman.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
G |
| Kalloniatis A |
Development of an Australia-wide extreme storms database for hydrologic risk assessments |
Dykman J, Kalloniatis A, Gallant H |
https://doi.org/10.36334/modsim2025.J06.dykman |
https://mssanz.org.au/modsim2025/files/J06.dykman.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
K |
| Angus SD |
DIMESim: an agent-based model of the psychological dynamics of collective action |
Thomas EF, Ye M, Mathew TJ, Angus SD, Louis W |
https://doi.org/10.36334/modsim2025.I03.thomas |
https://mssanz.org.au/modsim2025/files/I03.thomas.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
A |
| Louis W |
DIMESim: an agent-based model of the psychological dynamics of collective action |
Thomas EF, Ye M, Mathew TJ, Angus SD, Louis W |
https://doi.org/10.36334/modsim2025.I03.thomas |
https://mssanz.org.au/modsim2025/files/I03.thomas.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
L |
| Mathew TJ |
DIMESim: an agent-based model of the psychological dynamics of collective action |
Thomas EF, Ye M, Mathew TJ, Angus SD, Louis W |
https://doi.org/10.36334/modsim2025.I03.thomas |
https://mssanz.org.au/modsim2025/files/I03.thomas.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
M |
| Thomas EF |
DIMESim: an agent-based model of the psychological dynamics of collective action |
Thomas EF, Ye M, Mathew TJ, Angus SD, Louis W |
https://doi.org/10.36334/modsim2025.I03.thomas |
https://mssanz.org.au/modsim2025/files/I03.thomas.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
T |
| Ye M |
DIMESim: an agent-based model of the psychological dynamics of collective action |
Thomas EF, Ye M, Mathew TJ, Angus SD, Louis W |
https://doi.org/10.36334/modsim2025.I03.thomas |
https://mssanz.org.au/modsim2025/files/I03.thomas.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
Y |
| Aberathne I |
Discovery of MRI biomarker for early Alzheimer's disease integrating regional atrophy and ventricular expansion |
Aberathne I, Kulasiri D, Samarasinghe S, Zhang J |
https://doi.org/10.36334/modsim2025.H01.aberathne |
https://mssanz.org.au/modsim2025/files/H01.aberathne.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
A |
| Kulasiri D |
Discovery of MRI biomarker for early Alzheimer's disease integrating regional atrophy and ventricular expansion |
Aberathne I, Kulasiri D, Samarasinghe S, Zhang J |
https://doi.org/10.36334/modsim2025.H01.aberathne |
https://mssanz.org.au/modsim2025/files/H01.aberathne.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
K |
| Samarasinghe S |
Discovery of MRI biomarker for early Alzheimer's disease integrating regional atrophy and ventricular expansion |
Aberathne I, Kulasiri D, Samarasinghe S, Zhang J |
https://doi.org/10.36334/modsim2025.H01.aberathne |
https://mssanz.org.au/modsim2025/files/H01.aberathne.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
S |
| Zhang J |
Discovery of MRI biomarker for early Alzheimer's disease integrating regional atrophy and ventricular expansion |
Aberathne I, Kulasiri D, Samarasinghe S, Zhang J |
https://doi.org/10.36334/modsim2025.H01.aberathne |
https://mssanz.org.au/modsim2025/files/H01.aberathne.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
Z |
| Baker P |
Do androids dream of workflow provenance? An intelligent interface to the Provena metadata system |
Baker P, Shewan T, Yu J, Leighton B, Petridis R |
https://doi.org/10.36334/modsim2025.F10.baker |
https://mssanz.org.au/modsim2025/files/F10.baker.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
B |
| Leighton B |
Do androids dream of workflow provenance? An intelligent interface to the Provena metadata system |
Baker P, Shewan T, Yu J, Leighton B, Petridis R |
https://doi.org/10.36334/modsim2025.F10.baker |
https://mssanz.org.au/modsim2025/files/F10.baker.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
L |
| Petridis R |
Do androids dream of workflow provenance? An intelligent interface to the Provena metadata system |
Baker P, Shewan T, Yu J, Leighton B, Petridis R |
https://doi.org/10.36334/modsim2025.F10.baker |
https://mssanz.org.au/modsim2025/files/F10.baker.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
P |
| Shewan T |
Do androids dream of workflow provenance? An intelligent interface to the Provena metadata system |
Baker P, Shewan T, Yu J, Leighton B, Petridis R |
https://doi.org/10.36334/modsim2025.F10.baker |
https://mssanz.org.au/modsim2025/files/F10.baker.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
S |
| Yu J |
Do androids dream of workflow provenance? An intelligent interface to the Provena metadata system |
Baker P, Shewan T, Yu J, Leighton B, Petridis R |
https://doi.org/10.36334/modsim2025.F10.baker |
https://mssanz.org.au/modsim2025/files/F10.baker.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
Y |
| Chan F |
Do offer contracts, platform yield in deal structure matter? Analyses of U.S. securities-based crowdfunding markets |
Chua P, Chan F, Singh R |
https://doi.org/10.36334/modsim2025.D05.chua |
https://mssanz.org.au/modsim2025/files/D05.chua.pdf |
D |
Economics and finance |
D5 |
Decision-making under uncertainty in economics and finance |
C |
| Chua P |
Do offer contracts, platform yield in deal structure matter? Analyses of U.S. securities-based crowdfunding markets |
Chua P, Chan F, Singh R |
https://doi.org/10.36334/modsim2025.D05.chua |
https://mssanz.org.au/modsim2025/files/D05.chua.pdf |
D |
Economics and finance |
D5 |
Decision-making under uncertainty in economics and finance |
C |
| Singh R |
Do offer contracts, platform yield in deal structure matter? Analyses of U.S. securities-based crowdfunding markets |
Chua P, Chan F, Singh R |
https://doi.org/10.36334/modsim2025.D05.chua |
https://mssanz.org.au/modsim2025/files/D05.chua.pdf |
D |
Economics and finance |
D5 |
Decision-making under uncertainty in economics and finance |
S |
| Chang C-L |
Do sustainability metrics matter? ESG effects on green bond premiums |
Cheng W, Chang CL |
https://doi.org/10.36334/modsim2025.D02.cheng |
https://mssanz.org.au/modsim2025/files/D02.cheng.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
C |
| Cheng W-W |
Do sustainability metrics matter? ESG effects on green bond premiums |
Cheng W, Chang CL |
https://doi.org/10.36334/modsim2025.D02.cheng |
https://mssanz.org.au/modsim2025/files/D02.cheng.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
C |
| Leighton B |
Does a water policy paper plus the Self-Thinking Data Manifest (STDM) equal an educational experience? |
Penton DJ, Leighton B |
https://doi.org/10.36334/modsim2025.F10.penton |
https://mssanz.org.au/modsim2025/files/F10.penton.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
L |
| Penton DJ |
Does a water policy paper plus the Self-Thinking Data Manifest (STDM) equal an educational experience? |
Penton DJ, Leighton B |
https://doi.org/10.36334/modsim2025.F10.penton |
https://mssanz.org.au/modsim2025/files/F10.penton.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
P |
| Yap G |
Does overtourism and climate risk nexus exist? A cross-country examination |
Yap G |
https://doi.org/10.36334/modsim2025.D02.yap |
https://mssanz.org.au/modsim2025/files/D02.yap.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
Y |
| McCosker R |
Drift analysis of a SLAM-based handheld laser scanner in gully environments |
Rice E, McCosker R |
https://doi.org/10.36334/modsim2025.L04.rice |
https://mssanz.org.au/modsim2025/files/L04.rice.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
M |
| Rice E |
Drift analysis of a SLAM-based handheld laser scanner in gully environments |
Rice E, McCosker R |
https://doi.org/10.36334/modsim2025.L04.rice |
https://mssanz.org.au/modsim2025/files/L04.rice.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
R |
| Batelaan O |
Drywells for the future: Managing urban stormwater in a changing climate |
Pan L, Guan H, Myers B, Sapdhare H, Batelaan O |
https://doi.org/10.36334/modsim2025.G06.pan |
https://mssanz.org.au/modsim2025/files/G06.pan.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
B |
| Guan H |
Drywells for the future: Managing urban stormwater in a changing climate |
Pan L, Guan H, Myers B, Sapdhare H, Batelaan O |
https://doi.org/10.36334/modsim2025.G06.pan |
https://mssanz.org.au/modsim2025/files/G06.pan.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
G |
| Myers B |
Drywells for the future: Managing urban stormwater in a changing climate |
Pan L, Guan H, Myers B, Sapdhare H, Batelaan O |
https://doi.org/10.36334/modsim2025.G06.pan |
https://mssanz.org.au/modsim2025/files/G06.pan.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
M |
| Pan L (Liping) |
Drywells for the future: Managing urban stormwater in a changing climate |
Pan L, Guan H, Myers B, Sapdhare H, Batelaan O |
https://doi.org/10.36334/modsim2025.G06.pan |
https://mssanz.org.au/modsim2025/files/G06.pan.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
P |
| Sapdhare H |
Drywells for the future: Managing urban stormwater in a changing climate |
Pan L, Guan H, Myers B, Sapdhare H, Batelaan O |
https://doi.org/10.36334/modsim2025.G06.pan |
https://mssanz.org.au/modsim2025/files/G06.pan.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
S |
| Chen D (Dianyu) |
Dynamic light extinction coefficient: A key to improve evapotranspiration partitioning for orchards in diverse climates |
Chen D |
https://doi.org/10.36334/modsim2025.B08.chend |
https://mssanz.org.au/modsim2025/files/B08.chend.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
C |
| Bai L |
Dynamic short-term solar forecasting using historical data and machine learning under varying weather conditions |
Bai L |
https://doi.org/10.36334/modsim2025.E04.bai |
https://mssanz.org.au/modsim2025/files/E04.bai.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
B |
| Mudaliar R |
Dynamics and stability of milling behaviour under perturbation |
Smith KCM, Schaerf T, Welch M, Mudaliar R |
https://doi.org/10.36334/modsim2025.M02.smith |
https://mssanz.org.au/modsim2025/files/M02.smith.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
M |
| Schaerf T |
Dynamics and stability of milling behaviour under perturbation |
Smith KCM, Schaerf T, Welch M, Mudaliar R |
https://doi.org/10.36334/modsim2025.M02.smith |
https://mssanz.org.au/modsim2025/files/M02.smith.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
S |
| Smith KCM |
Dynamics and stability of milling behaviour under perturbation |
Smith KCM, Schaerf T, Welch M, Mudaliar R |
https://doi.org/10.36334/modsim2025.M02.smith |
https://mssanz.org.au/modsim2025/files/M02.smith.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
S |
| Welch M |
Dynamics and stability of milling behaviour under perturbation |
Smith KCM, Schaerf T, Welch M, Mudaliar R |
https://doi.org/10.36334/modsim2025.M02.smith |
https://mssanz.org.au/modsim2025/files/M02.smith.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
W |
| Aeman H |
Early forecasting of crop irrigation for sustainable water use with satellite data and machine learning |
Aeman H, Hafeez M, Liaqat UW, Munir S |
https://doi.org/10.36334/modsim2025.F11.aeman |
https://mssanz.org.au/modsim2025/files/F11.aeman.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
A |
| Hafeez M (Mohsin) |
Early forecasting of crop irrigation for sustainable water use with satellite data and machine learning |
Aeman H, Hafeez M, Liaqat UW, Munir S |
https://doi.org/10.36334/modsim2025.F11.aeman |
https://mssanz.org.au/modsim2025/files/F11.aeman.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
H |
| Liaqat UW |
Early forecasting of crop irrigation for sustainable water use with satellite data and machine learning |
Aeman H, Hafeez M, Liaqat UW, Munir S |
https://doi.org/10.36334/modsim2025.F11.aeman |
https://mssanz.org.au/modsim2025/files/F11.aeman.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
L |
| Munir S |
Early forecasting of crop irrigation for sustainable water use with satellite data and machine learning |
Aeman H, Hafeez M, Liaqat UW, Munir S |
https://doi.org/10.36334/modsim2025.F11.aeman |
https://mssanz.org.au/modsim2025/files/F11.aeman.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
M |
| Bae S |
Early mortality risk prediction in acutely injured service members using machine learning algorithms |
Le TD, Cook A, Bae S, Gurney JM, Singh KP |
https://doi.org/10.36334/modsim2025.H01.le |
https://mssanz.org.au/modsim2025/files/H01.le.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
B |
| Cook A |
Early mortality risk prediction in acutely injured service members using machine learning algorithms |
Le TD, Cook A, Bae S, Gurney JM, Singh KP |
https://doi.org/10.36334/modsim2025.H01.le |
https://mssanz.org.au/modsim2025/files/H01.le.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
C |
| Gurney JM |
Early mortality risk prediction in acutely injured service members using machine learning algorithms |
Le TD, Cook A, Bae S, Gurney JM, Singh KP |
https://doi.org/10.36334/modsim2025.H01.le |
https://mssanz.org.au/modsim2025/files/H01.le.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
G |
| Le TD (Tuan) |
Early mortality risk prediction in acutely injured service members using machine learning algorithms |
Le TD, Cook A, Bae S, Gurney JM, Singh KP |
https://doi.org/10.36334/modsim2025.H01.le |
https://mssanz.org.au/modsim2025/files/H01.le.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
L |
| Singh KP |
Early mortality risk prediction in acutely injured service members using machine learning algorithms |
Le TD, Cook A, Bae S, Gurney JM, Singh KP |
https://doi.org/10.36334/modsim2025.H01.le |
https://mssanz.org.au/modsim2025/files/H01.le.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
S |
| Drielsma MJ |
Ecological community modelling: climate-informed adaptation strategies for southeastern Australia’s biodiversity |
Thonell JL, Groenewegen RJ, McNellie MJ, Sramek MH, Drielsma MJ, Love J, Manion G |
https://doi.org/10.36334/modsim2025.F03.thonell |
https://mssanz.org.au/modsim2025/files/F03.thonell.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
D |
| Groenewegen RJ |
Ecological community modelling: climate-informed adaptation strategies for southeastern Australia’s biodiversity |
Thonell JL, Groenewegen RJ, McNellie MJ, Sramek MH, Drielsma MJ, Love J, Manion G |
https://doi.org/10.36334/modsim2025.F03.thonell |
https://mssanz.org.au/modsim2025/files/F03.thonell.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
G |
| Love J |
Ecological community modelling: climate-informed adaptation strategies for southeastern Australia’s biodiversity |
Thonell JL, Groenewegen RJ, McNellie MJ, Sramek MH, Drielsma MJ, Love J, Manion G |
https://doi.org/10.36334/modsim2025.F03.thonell |
https://mssanz.org.au/modsim2025/files/F03.thonell.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
L |
| Manion G |
Ecological community modelling: climate-informed adaptation strategies for southeastern Australia’s biodiversity |
Thonell JL, Groenewegen RJ, McNellie MJ, Sramek MH, Drielsma MJ, Love J, Manion G |
https://doi.org/10.36334/modsim2025.F03.thonell |
https://mssanz.org.au/modsim2025/files/F03.thonell.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
M |
| McNellie MJ |
Ecological community modelling: climate-informed adaptation strategies for southeastern Australia’s biodiversity |
Thonell JL, Groenewegen RJ, McNellie MJ, Sramek MH, Drielsma MJ, Love J, Manion G |
https://doi.org/10.36334/modsim2025.F03.thonell |
https://mssanz.org.au/modsim2025/files/F03.thonell.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
M |
| Sramek MH |
Ecological community modelling: climate-informed adaptation strategies for southeastern Australia’s biodiversity |
Thonell JL, Groenewegen RJ, McNellie MJ, Sramek MH, Drielsma MJ, Love J, Manion G |
https://doi.org/10.36334/modsim2025.F03.thonell |
https://mssanz.org.au/modsim2025/files/F03.thonell.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
S |
| Thonell JL |
Ecological community modelling: climate-informed adaptation strategies for southeastern Australia’s biodiversity |
Thonell JL, Groenewegen RJ, McNellie MJ, Sramek MH, Drielsma MJ, Love J, Manion G |
https://doi.org/10.36334/modsim2025.F03.thonell |
https://mssanz.org.au/modsim2025/files/F03.thonell.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
T |
| Ellsworth D |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
E |
| Fleischer K |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
F |
| Goll D |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
G |
| Jiang M (Mingkai) |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
J |
| Knauer J |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
K |
| Lyu H (He) |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
L |
| Medlyn B |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
M |
| Olin S |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
O |
| Schufft K |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
S |
| Smith B |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
S |
| Wang B (Bin) |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
W |
| Wårlind D |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
W |
| Yang X (Xiaojuan) |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
Y |
| Yu L (Liu) |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
Y |
| Zaehle S |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
Z |
| Zhang H (Haicheng) |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
Z |
| Zhang X (Xueqian) |
Ecological forecasting to support experimental design: the EucFACE experiment as a case study |
Medlyn B, Jiang M, Wang B, Lyu H, Zhang X, Wårlind D, Knauer J, Fleischer K, Goll D, Olin S, Yang X, Yu L, Zaehle S, Zhang H, Schufft K, Ellsworth D, Smith B |
https://doi.org/10.36334/modsim2025.F09.medlyn |
https://mssanz.org.au/modsim2025/files/F09.medlyn.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
Z |
| Craig AT |
Ecological suitability of Japanese encephalitis virus in Australia: a modelling analysis of vector-host transmission dynamics to potential spillover in humans |
Skinner EB, Sartorius B, Furuya‑Kanamori L, Craig AT, Kiani B, Johnson BJ, Moore K, Hickson RI, Mordecai EA, Devine G, Lau CL |
https://doi.org/10.36334/modsim2025.H04.skinner |
https://mssanz.org.au/modsim2025/files/H04.skinner.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
C |
| Devine G |
Ecological suitability of Japanese encephalitis virus in Australia: a modelling analysis of vector-host transmission dynamics to potential spillover in humans |
Skinner EB, Sartorius B, Furuya‑Kanamori L, Craig AT, Kiani B, Johnson BJ, Moore K, Hickson RI, Mordecai EA, Devine G, Lau CL |
https://doi.org/10.36334/modsim2025.H04.skinner |
https://mssanz.org.au/modsim2025/files/H04.skinner.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
D |
| Furuya‑Kanamori L |
Ecological suitability of Japanese encephalitis virus in Australia: a modelling analysis of vector-host transmission dynamics to potential spillover in humans |
Skinner EB, Sartorius B, Furuya‑Kanamori L, Craig AT, Kiani B, Johnson BJ, Moore K, Hickson RI, Mordecai EA, Devine G, Lau CL |
https://doi.org/10.36334/modsim2025.H04.skinner |
https://mssanz.org.au/modsim2025/files/H04.skinner.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
F |
| Hickson RI |
Ecological suitability of Japanese encephalitis virus in Australia: a modelling analysis of vector-host transmission dynamics to potential spillover in humans |
Skinner EB, Sartorius B, Furuya‑Kanamori L, Craig AT, Kiani B, Johnson BJ, Moore K, Hickson RI, Mordecai EA, Devine G, Lau CL |
https://doi.org/10.36334/modsim2025.H04.skinner |
https://mssanz.org.au/modsim2025/files/H04.skinner.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
H |
| Johnson BJ |
Ecological suitability of Japanese encephalitis virus in Australia: a modelling analysis of vector-host transmission dynamics to potential spillover in humans |
Skinner EB, Sartorius B, Furuya‑Kanamori L, Craig AT, Kiani B, Johnson BJ, Moore K, Hickson RI, Mordecai EA, Devine G, Lau CL |
https://doi.org/10.36334/modsim2025.H04.skinner |
https://mssanz.org.au/modsim2025/files/H04.skinner.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
J |
| Kiani B |
Ecological suitability of Japanese encephalitis virus in Australia: a modelling analysis of vector-host transmission dynamics to potential spillover in humans |
Skinner EB, Sartorius B, Furuya‑Kanamori L, Craig AT, Kiani B, Johnson BJ, Moore K, Hickson RI, Mordecai EA, Devine G, Lau CL |
https://doi.org/10.36334/modsim2025.H04.skinner |
https://mssanz.org.au/modsim2025/files/H04.skinner.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
K |
| Lau CL |
Ecological suitability of Japanese encephalitis virus in Australia: a modelling analysis of vector-host transmission dynamics to potential spillover in humans |
Skinner EB, Sartorius B, Furuya‑Kanamori L, Craig AT, Kiani B, Johnson BJ, Moore K, Hickson RI, Mordecai EA, Devine G, Lau CL |
https://doi.org/10.36334/modsim2025.H04.skinner |
https://mssanz.org.au/modsim2025/files/H04.skinner.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
L |
| Moore K |
Ecological suitability of Japanese encephalitis virus in Australia: a modelling analysis of vector-host transmission dynamics to potential spillover in humans |
Skinner EB, Sartorius B, Furuya‑Kanamori L, Craig AT, Kiani B, Johnson BJ, Moore K, Hickson RI, Mordecai EA, Devine G, Lau CL |
https://doi.org/10.36334/modsim2025.H04.skinner |
https://mssanz.org.au/modsim2025/files/H04.skinner.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
M |
| Mordecai EA |
Ecological suitability of Japanese encephalitis virus in Australia: a modelling analysis of vector-host transmission dynamics to potential spillover in humans |
Skinner EB, Sartorius B, Furuya‑Kanamori L, Craig AT, Kiani B, Johnson BJ, Moore K, Hickson RI, Mordecai EA, Devine G, Lau CL |
https://doi.org/10.36334/modsim2025.H04.skinner |
https://mssanz.org.au/modsim2025/files/H04.skinner.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
M |
| Sartorius B |
Ecological suitability of Japanese encephalitis virus in Australia: a modelling analysis of vector-host transmission dynamics to potential spillover in humans |
Skinner EB, Sartorius B, Furuya‑Kanamori L, Craig AT, Kiani B, Johnson BJ, Moore K, Hickson RI, Mordecai EA, Devine G, Lau CL |
https://doi.org/10.36334/modsim2025.H04.skinner |
https://mssanz.org.au/modsim2025/files/H04.skinner.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
S |
| Skinner EB |
Ecological suitability of Japanese encephalitis virus in Australia: a modelling analysis of vector-host transmission dynamics to potential spillover in humans |
Skinner EB, Sartorius B, Furuya‑Kanamori L, Craig AT, Kiani B, Johnson BJ, Moore K, Hickson RI, Mordecai EA, Devine G, Lau CL |
https://doi.org/10.36334/modsim2025.H04.skinner |
https://mssanz.org.au/modsim2025/files/H04.skinner.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
S |
| Gao S (Sicong) |
Ecological thresholds of concern in the Murray-Darling Basin |
Stratford D, Gao S, Thomas H, Linke S, Merrin L, Pritchard J, King D |
https://doi.org/10.36334/modsim2025.F03.stratford |
https://mssanz.org.au/modsim2025/files/F03.stratford.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
G |
| King D |
Ecological thresholds of concern in the Murray-Darling Basin |
Stratford D, Gao S, Thomas H, Linke S, Merrin L, Pritchard J, King D |
https://doi.org/10.36334/modsim2025.F03.stratford |
https://mssanz.org.au/modsim2025/files/F03.stratford.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
K |
| Linke S |
Ecological thresholds of concern in the Murray-Darling Basin |
Stratford D, Gao S, Thomas H, Linke S, Merrin L, Pritchard J, King D |
https://doi.org/10.36334/modsim2025.F03.stratford |
https://mssanz.org.au/modsim2025/files/F03.stratford.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
L |
| Merrin L |
Ecological thresholds of concern in the Murray-Darling Basin |
Stratford D, Gao S, Thomas H, Linke S, Merrin L, Pritchard J, King D |
https://doi.org/10.36334/modsim2025.F03.stratford |
https://mssanz.org.au/modsim2025/files/F03.stratford.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
M |
| Pritchard J |
Ecological thresholds of concern in the Murray-Darling Basin |
Stratford D, Gao S, Thomas H, Linke S, Merrin L, Pritchard J, King D |
https://doi.org/10.36334/modsim2025.F03.stratford |
https://mssanz.org.au/modsim2025/files/F03.stratford.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
P |
| Stratford D |
Ecological thresholds of concern in the Murray-Darling Basin |
Stratford D, Gao S, Thomas H, Linke S, Merrin L, Pritchard J, King D |
https://doi.org/10.36334/modsim2025.F03.stratford |
https://mssanz.org.au/modsim2025/files/F03.stratford.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
S |
| Thomas H |
Ecological thresholds of concern in the Murray-Darling Basin |
Stratford D, Gao S, Thomas H, Linke S, Merrin L, Pritchard J, King D |
https://doi.org/10.36334/modsim2025.F03.stratford |
https://mssanz.org.au/modsim2025/files/F03.stratford.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
T |
| Sharma V |
Economic modelling of rooftop photovoltaic and battery storage for affordable low-emission energy transitions |
Sharma V |
https://doi.org/10.36334/modsim2025.E03.sharma |
https://mssanz.org.au/modsim2025/files/E03.sharma.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
S |
| Andrys J |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
A |
| Barnes K |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
B |
| Choudhury D |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
C |
| di Virgilio G |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
d |
| Ji F (Fei) |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
J |
| Kala J |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
K |
| Lam SH (Sean) |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
L |
| Li Y (Yue) |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
L |
| Lingala J |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
L |
| Marinelli M |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
M |
| Mughal MO |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
M |
| Oliver J |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
O |
| Riley ML |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
R |
| Rocha C |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
R |
| Tam E (Eugene) |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
T |
| Tran K (Kim) |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
T |
| Wamahiu K |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
W |
| White S |
Efficient high-resolution climate simulations for Western Australia: optimising domain design and resource allocation |
Kala J, Andrys J, Lam SH, Mughal MO, Lingala J, Wamahiu K, Barnes K, Tran K, Oliver J, di Virgilio G, White S, Ji F, Tam E, Choudhury D, Li Y, Rocha C, Riley ML, Marinelli M |
https://doi.org/10.36334/modsim2025.G03.kala |
https://mssanz.org.au/modsim2025/files/G03.kala.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
W |
| Adams MP |
Efficient sampling from a multivariate normal distribution subject to linear equality and inequality constraints |
Adams MP, Monsalve-Bravo GM, Dowdell LG, Sisson SA, Drovandi C |
https://doi.org/10.36334/modsim2025.A01.adams |
https://mssanz.org.au/modsim2025/files/A01.adams.pdf |
A |
Applied and computational mathematics |
A1 |
Applied Probability |
A |
| Dowdell LG |
Efficient sampling from a multivariate normal distribution subject to linear equality and inequality constraints |
Adams MP, Monsalve-Bravo GM, Dowdell LG, Sisson SA, Drovandi C |
https://doi.org/10.36334/modsim2025.A01.adams |
https://mssanz.org.au/modsim2025/files/A01.adams.pdf |
A |
Applied and computational mathematics |
A1 |
Applied Probability |
D |
| Drovandi C |
Efficient sampling from a multivariate normal distribution subject to linear equality and inequality constraints |
Adams MP, Monsalve-Bravo GM, Dowdell LG, Sisson SA, Drovandi C |
https://doi.org/10.36334/modsim2025.A01.adams |
https://mssanz.org.au/modsim2025/files/A01.adams.pdf |
A |
Applied and computational mathematics |
A1 |
Applied Probability |
D |
| Monsalve-Bravo GM |
Efficient sampling from a multivariate normal distribution subject to linear equality and inequality constraints |
Adams MP, Monsalve-Bravo GM, Dowdell LG, Sisson SA, Drovandi C |
https://doi.org/10.36334/modsim2025.A01.adams |
https://mssanz.org.au/modsim2025/files/A01.adams.pdf |
A |
Applied and computational mathematics |
A1 |
Applied Probability |
M |
| Sisson SA |
Efficient sampling from a multivariate normal distribution subject to linear equality and inequality constraints |
Adams MP, Monsalve-Bravo GM, Dowdell LG, Sisson SA, Drovandi C |
https://doi.org/10.36334/modsim2025.A01.adams |
https://mssanz.org.au/modsim2025/files/A01.adams.pdf |
A |
Applied and computational mathematics |
A1 |
Applied Probability |
S |
| Ashman P |
Electrification of cement clinker production: A case study on variable renewable energy integration |
Leow CY, Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Coventry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.leow |
https://mssanz.org.au/modsim2025/files/E02.leow.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
A |
| Benz T |
Electrification of cement clinker production: A case study on variable renewable energy integration |
Leow CY, Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Coventry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.leow |
https://mssanz.org.au/modsim2025/files/E02.leow.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
B |
| Coventry J |
Electrification of cement clinker production: A case study on variable renewable energy integration |
Leow CY, Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Coventry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.leow |
https://mssanz.org.au/modsim2025/files/E02.leow.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
C |
| Fontalvo A |
Electrification of cement clinker production: A case study on variable renewable energy integration |
Leow CY, Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Coventry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.leow |
https://mssanz.org.au/modsim2025/files/E02.leow.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
F |
| Leow CY |
Electrification of cement clinker production: A case study on variable renewable energy integration |
Leow CY, Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Coventry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.leow |
https://mssanz.org.au/modsim2025/files/E02.leow.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
L |
| Pye J |
Electrification of cement clinker production: A case study on variable renewable energy integration |
Leow CY, Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Coventry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.leow |
https://mssanz.org.au/modsim2025/files/E02.leow.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
P |
| Saw W |
Electrification of cement clinker production: A case study on variable renewable energy integration |
Leow CY, Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Coventry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.leow |
https://mssanz.org.au/modsim2025/files/E02.leow.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
S |
| Wang Y (Ye) |
Electrification of cement clinker production: A case study on variable renewable energy integration |
Leow CY, Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Coventry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.leow |
https://mssanz.org.au/modsim2025/files/E02.leow.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
W |
| Hall A (Andy) |
Embedding public health in environmental stewardship: lessons from participatory landscape modelling in central New South Wales, Australia |
Onyango E, Szetey K, Hall A |
https://doi.org/10.36334/modsim2025.F05.onyango |
https://mssanz.org.au/modsim2025/files/F05.onyango.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
H |
| Onyango E |
Embedding public health in environmental stewardship: lessons from participatory landscape modelling in central New South Wales, Australia |
Onyango E, Szetey K, Hall A |
https://doi.org/10.36334/modsim2025.F05.onyango |
https://mssanz.org.au/modsim2025/files/F05.onyango.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
O |
| Szetey K |
Embedding public health in environmental stewardship: lessons from participatory landscape modelling in central New South Wales, Australia |
Onyango E, Szetey K, Hall A |
https://doi.org/10.36334/modsim2025.F05.onyango |
https://mssanz.org.au/modsim2025/files/F05.onyango.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
S |
| Dandy GC |
Embracing scenario thinking in water resources management under deep uncertainty |
Wu W, Eamen L, Dandy GC, Maier HR, Razavi S, Kwakkel J, Huang J, Kuczera G |
https://doi.org/10.36334/modsim2025.J08.wu |
https://mssanz.org.au/modsim2025/files/J08.wu.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
D |
| Eamen L |
Embracing scenario thinking in water resources management under deep uncertainty |
Wu W, Eamen L, Dandy GC, Maier HR, Razavi S, Kwakkel J, Huang J, Kuczera G |
https://doi.org/10.36334/modsim2025.J08.wu |
https://mssanz.org.au/modsim2025/files/J08.wu.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
E |
| Huang J (Jiajia) |
Embracing scenario thinking in water resources management under deep uncertainty |
Wu W, Eamen L, Dandy GC, Maier HR, Razavi S, Kwakkel J, Huang J, Kuczera G |
https://doi.org/10.36334/modsim2025.J08.wu |
https://mssanz.org.au/modsim2025/files/J08.wu.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
H |
| Kuczera G |
Embracing scenario thinking in water resources management under deep uncertainty |
Wu W, Eamen L, Dandy GC, Maier HR, Razavi S, Kwakkel J, Huang J, Kuczera G |
https://doi.org/10.36334/modsim2025.J08.wu |
https://mssanz.org.au/modsim2025/files/J08.wu.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
K |
| Kwakkel J |
Embracing scenario thinking in water resources management under deep uncertainty |
Wu W, Eamen L, Dandy GC, Maier HR, Razavi S, Kwakkel J, Huang J, Kuczera G |
https://doi.org/10.36334/modsim2025.J08.wu |
https://mssanz.org.au/modsim2025/files/J08.wu.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
K |
| Maier HR |
Embracing scenario thinking in water resources management under deep uncertainty |
Wu W, Eamen L, Dandy GC, Maier HR, Razavi S, Kwakkel J, Huang J, Kuczera G |
https://doi.org/10.36334/modsim2025.J08.wu |
https://mssanz.org.au/modsim2025/files/J08.wu.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
M |
| Razavi S |
Embracing scenario thinking in water resources management under deep uncertainty |
Wu W, Eamen L, Dandy GC, Maier HR, Razavi S, Kwakkel J, Huang J, Kuczera G |
https://doi.org/10.36334/modsim2025.J08.wu |
https://mssanz.org.au/modsim2025/files/J08.wu.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
R |
| Wu W (Wenyan) |
Embracing scenario thinking in water resources management under deep uncertainty |
Wu W, Eamen L, Dandy GC, Maier HR, Razavi S, Kwakkel J, Huang J, Kuczera G |
https://doi.org/10.36334/modsim2025.J08.wu |
https://mssanz.org.au/modsim2025/files/J08.wu.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
W |
| Bonu MSK |
Employing image processing and anomaly detection for faulty solar cells |
Bonu MSK, Ghahremani A, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R |
https://doi.org/10.36334/modsim2025.E04.bonu |
https://mssanz.org.au/modsim2025/files/E04.bonu.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
B |
| Ghahremani A |
Employing image processing and anomaly detection for faulty solar cells |
Bonu MSK, Ghahremani A, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R |
https://doi.org/10.36334/modsim2025.E04.bonu |
https://mssanz.org.au/modsim2025/files/E04.bonu.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
G |
| Ghasemi M |
Employing image processing and anomaly detection for faulty solar cells |
Bonu MSK, Ghahremani A, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R |
https://doi.org/10.36334/modsim2025.E04.bonu |
https://mssanz.org.au/modsim2025/files/E04.bonu.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
G |
| Nazari A |
Employing image processing and anomaly detection for faulty solar cells |
Bonu MSK, Ghahremani A, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R |
https://doi.org/10.36334/modsim2025.E04.bonu |
https://mssanz.org.au/modsim2025/files/E04.bonu.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
N |
| Thiruvady D |
Employing image processing and anomaly detection for faulty solar cells |
Bonu MSK, Ghahremani A, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R |
https://doi.org/10.36334/modsim2025.E04.bonu |
https://mssanz.org.au/modsim2025/files/E04.bonu.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
T |
| van der Meer R |
Employing image processing and anomaly detection for faulty solar cells |
Bonu MSK, Ghahremani A, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R |
https://doi.org/10.36334/modsim2025.E04.bonu |
https://mssanz.org.au/modsim2025/files/E04.bonu.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
v |
| Cheng L |
Enhanced model parameter transferability to ungauged catchment through regionally constrained calibration |
Wang X, Zheng H, Shao Q, Cheng L, Liu P, Zhang L |
https://doi.org/10.36334/modsim2025.J10.wang |
https://mssanz.org.au/modsim2025/files/J10.wang.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
C |
| Liu P |
Enhanced model parameter transferability to ungauged catchment through regionally constrained calibration |
Wang X, Zheng H, Shao Q, Cheng L, Liu P, Zhang L |
https://doi.org/10.36334/modsim2025.J10.wang |
https://mssanz.org.au/modsim2025/files/J10.wang.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
L |
| Shao Q |
Enhanced model parameter transferability to ungauged catchment through regionally constrained calibration |
Wang X, Zheng H, Shao Q, Cheng L, Liu P, Zhang L |
https://doi.org/10.36334/modsim2025.J10.wang |
https://mssanz.org.au/modsim2025/files/J10.wang.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
S |
| Wang X |
Enhanced model parameter transferability to ungauged catchment through regionally constrained calibration |
Wang X, Zheng H, Shao Q, Cheng L, Liu P, Zhang L |
https://doi.org/10.36334/modsim2025.J10.wang |
https://mssanz.org.au/modsim2025/files/J10.wang.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
W |
| Zhang L (Liangjing) |
Enhanced model parameter transferability to ungauged catchment through regionally constrained calibration |
Wang X, Zheng H, Shao Q, Cheng L, Liu P, Zhang L |
https://doi.org/10.36334/modsim2025.J10.wang |
https://mssanz.org.au/modsim2025/files/J10.wang.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
Z |
| Zheng H (Hongzing) |
Enhanced model parameter transferability to ungauged catchment through regionally constrained calibration |
Wang X, Zheng H, Shao Q, Cheng L, Liu P, Zhang L |
https://doi.org/10.36334/modsim2025.J10.wang |
https://mssanz.org.au/modsim2025/files/J10.wang.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
Z |
| Curtis M |
Enhanced tools necessary for managing a high distributed solar photovoltaic electricity system |
Panicciari E, Curtis M, Grantham A |
https://doi.org/10.36334/modsim2025.E01.panicciari |
https://mssanz.org.au/modsim2025/files/E01.panicciari.pdf |
E |
Energy, integrated infrastructure and urban planning |
E1 |
Tools for the Energy Transition |
C |
| Grantham A |
Enhanced tools necessary for managing a high distributed solar photovoltaic electricity system |
Panicciari E, Curtis M, Grantham A |
https://doi.org/10.36334/modsim2025.E01.panicciari |
https://mssanz.org.au/modsim2025/files/E01.panicciari.pdf |
E |
Energy, integrated infrastructure and urban planning |
E1 |
Tools for the Energy Transition |
G |
| Panicciari E |
Enhanced tools necessary for managing a high distributed solar photovoltaic electricity system |
Panicciari E, Curtis M, Grantham A |
https://doi.org/10.36334/modsim2025.E01.panicciari |
https://mssanz.org.au/modsim2025/files/E01.panicciari.pdf |
E |
Energy, integrated infrastructure and urban planning |
E1 |
Tools for the Energy Transition |
P |
| Brown A (Alice) |
Enhancing environmental water management in Source: decoupling spell identification from ordering at environmental flow nodes |
Sapkota M, Brown A, Roberts T, Davidson A, Khan A, Tarquinio F |
https://doi.org/10.36334/modsim2025.J02.sapkota |
https://mssanz.org.au/modsim2025/files/J02.sapkota.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
B |
| Davidson A |
Enhancing environmental water management in Source: decoupling spell identification from ordering at environmental flow nodes |
Sapkota M, Brown A, Roberts T, Davidson A, Khan A, Tarquinio F |
https://doi.org/10.36334/modsim2025.J02.sapkota |
https://mssanz.org.au/modsim2025/files/J02.sapkota.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
D |
| Khan A |
Enhancing environmental water management in Source: decoupling spell identification from ordering at environmental flow nodes |
Sapkota M, Brown A, Roberts T, Davidson A, Khan A, Tarquinio F |
https://doi.org/10.36334/modsim2025.J02.sapkota |
https://mssanz.org.au/modsim2025/files/J02.sapkota.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
K |
| Roberts T |
Enhancing environmental water management in Source: decoupling spell identification from ordering at environmental flow nodes |
Sapkota M, Brown A, Roberts T, Davidson A, Khan A, Tarquinio F |
https://doi.org/10.36334/modsim2025.J02.sapkota |
https://mssanz.org.au/modsim2025/files/J02.sapkota.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
R |
| Sapkota M |
Enhancing environmental water management in Source: decoupling spell identification from ordering at environmental flow nodes |
Sapkota M, Brown A, Roberts T, Davidson A, Khan A, Tarquinio F |
https://doi.org/10.36334/modsim2025.J02.sapkota |
https://mssanz.org.au/modsim2025/files/J02.sapkota.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
S |
| Tarquinio F |
Enhancing environmental water management in Source: decoupling spell identification from ordering at environmental flow nodes |
Sapkota M, Brown A, Roberts T, Davidson A, Khan A, Tarquinio F |
https://doi.org/10.36334/modsim2025.J02.sapkota |
https://mssanz.org.au/modsim2025/files/J02.sapkota.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
T |
| Chen C |
Enhancing near-surface soil water and temperature simulation through fine-scale field observations and mechanistic modelling |
Luo T, Verburg K, Micin S, Sheng W, Chen C, Rich S, Rebetzke G, Fletcher A |
https://doi.org/10.36334/modsim2025.B03.luo |
https://mssanz.org.au/modsim2025/files/B03.luo.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
C |
| Fletcher A |
Enhancing near-surface soil water and temperature simulation through fine-scale field observations and mechanistic modelling |
Luo T, Verburg K, Micin S, Sheng W, Chen C, Rich S, Rebetzke G, Fletcher A |
https://doi.org/10.36334/modsim2025.B03.luo |
https://mssanz.org.au/modsim2025/files/B03.luo.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
F |
| Luo T |
Enhancing near-surface soil water and temperature simulation through fine-scale field observations and mechanistic modelling |
Luo T, Verburg K, Micin S, Sheng W, Chen C, Rich S, Rebetzke G, Fletcher A |
https://doi.org/10.36334/modsim2025.B03.luo |
https://mssanz.org.au/modsim2025/files/B03.luo.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
L |
| Micin S |
Enhancing near-surface soil water and temperature simulation through fine-scale field observations and mechanistic modelling |
Luo T, Verburg K, Micin S, Sheng W, Chen C, Rich S, Rebetzke G, Fletcher A |
https://doi.org/10.36334/modsim2025.B03.luo |
https://mssanz.org.au/modsim2025/files/B03.luo.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
M |
| Rebetzke G |
Enhancing near-surface soil water and temperature simulation through fine-scale field observations and mechanistic modelling |
Luo T, Verburg K, Micin S, Sheng W, Chen C, Rich S, Rebetzke G, Fletcher A |
https://doi.org/10.36334/modsim2025.B03.luo |
https://mssanz.org.au/modsim2025/files/B03.luo.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
R |
| Rich S |
Enhancing near-surface soil water and temperature simulation through fine-scale field observations and mechanistic modelling |
Luo T, Verburg K, Micin S, Sheng W, Chen C, Rich S, Rebetzke G, Fletcher A |
https://doi.org/10.36334/modsim2025.B03.luo |
https://mssanz.org.au/modsim2025/files/B03.luo.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
R |
| Sheng W |
Enhancing near-surface soil water and temperature simulation through fine-scale field observations and mechanistic modelling |
Luo T, Verburg K, Micin S, Sheng W, Chen C, Rich S, Rebetzke G, Fletcher A |
https://doi.org/10.36334/modsim2025.B03.luo |
https://mssanz.org.au/modsim2025/files/B03.luo.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
S |
| Verburg K |
Enhancing near-surface soil water and temperature simulation through fine-scale field observations and mechanistic modelling |
Luo T, Verburg K, Micin S, Sheng W, Chen C, Rich S, Rebetzke G, Fletcher A |
https://doi.org/10.36334/modsim2025.B03.luo |
https://mssanz.org.au/modsim2025/files/B03.luo.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
V |
| Abellan E |
Enhancing NWP post-processing with IMPROVER |
Owen B, Abellan E, Canvin J, Esler R, Johnson R, Kelly A, McIntyre K, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owen |
https://mssanz.org.au/modsim2025/files/K02.owen.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
A |
| Canvin J |
Enhancing NWP post-processing with IMPROVER |
Owen B, Abellan E, Canvin J, Esler R, Johnson R, Kelly A, McIntyre K, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owen |
https://mssanz.org.au/modsim2025/files/K02.owen.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
C |
| Esler R |
Enhancing NWP post-processing with IMPROVER |
Owen B, Abellan E, Canvin J, Esler R, Johnson R, Kelly A, McIntyre K, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owen |
https://mssanz.org.au/modsim2025/files/K02.owen.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
E |
| Johnson R |
Enhancing NWP post-processing with IMPROVER |
Owen B, Abellan E, Canvin J, Esler R, Johnson R, Kelly A, McIntyre K, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owen |
https://mssanz.org.au/modsim2025/files/K02.owen.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
J |
| Kelly A |
Enhancing NWP post-processing with IMPROVER |
Owen B, Abellan E, Canvin J, Esler R, Johnson R, Kelly A, McIntyre K, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owen |
https://mssanz.org.au/modsim2025/files/K02.owen.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
K |
| McIntyre K |
Enhancing NWP post-processing with IMPROVER |
Owen B, Abellan E, Canvin J, Esler R, Johnson R, Kelly A, McIntyre K, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owen |
https://mssanz.org.au/modsim2025/files/K02.owen.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
M |
| Mentiplay D |
Enhancing NWP post-processing with IMPROVER |
Owen B, Abellan E, Canvin J, Esler R, Johnson R, Kelly A, McIntyre K, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owen |
https://mssanz.org.au/modsim2025/files/K02.owen.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
M |
| Owen B |
Enhancing NWP post-processing with IMPROVER |
Owen B, Abellan E, Canvin J, Esler R, Johnson R, Kelly A, McIntyre K, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owen |
https://mssanz.org.au/modsim2025/files/K02.owen.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
O |
| Trotta B |
Enhancing NWP post-processing with IMPROVER |
Owen B, Abellan E, Canvin J, Esler R, Johnson R, Kelly A, McIntyre K, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owen |
https://mssanz.org.au/modsim2025/files/K02.owen.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
T |
| Whelan J |
Enhancing NWP post-processing with IMPROVER |
Owen B, Abellan E, Canvin J, Esler R, Johnson R, Kelly A, McIntyre K, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owen |
https://mssanz.org.au/modsim2025/files/K02.owen.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
W |
| Wu L (Lingyun) |
Ensemble post-processing of sub-seasonal to seasonal precipitation forecasts based on Probabilistic Double Machine Learning method |
Zhan S, Ye A, Wu L, Zhao C |
https://doi.org/10.36334/modsim2025.K08.zhan |
https://mssanz.org.au/modsim2025/files/K08.zhan.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
W |
| Ye A (Aizhong) |
Ensemble post-processing of sub-seasonal to seasonal precipitation forecasts based on Probabilistic Double Machine Learning method |
Zhan S, Ye A, Wu L, Zhao C |
https://doi.org/10.36334/modsim2025.K08.zhan |
https://mssanz.org.au/modsim2025/files/K08.zhan.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
Y |
| Zhan S (Shengsheng) |
Ensemble post-processing of sub-seasonal to seasonal precipitation forecasts based on Probabilistic Double Machine Learning method |
Zhan S, Ye A, Wu L, Zhao C |
https://doi.org/10.36334/modsim2025.K08.zhan |
https://mssanz.org.au/modsim2025/files/K08.zhan.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
Z |
| Zhao C (Chenguang) |
Ensemble post-processing of sub-seasonal to seasonal precipitation forecasts based on Probabilistic Double Machine Learning method |
Zhan S, Ye A, Wu L, Zhao C |
https://doi.org/10.36334/modsim2025.K08.zhan |
https://mssanz.org.au/modsim2025/files/K08.zhan.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
Z |
| Fu C (Chenhao) |
Estimating evapotranspiration from deciduous broadleaf forests by considering the effect of foliar litter |
Fu C |
https://doi.org/10.36334/modsim2025.J11.fu |
https://mssanz.org.au/modsim2025/files/J11.fu.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
F |
| Chen D (Deli) |
Estimating fractions of N₂O emissions from nitrification and denitrification using data assimilation |
Pan B, Huang Y, Xia L, Luo Y, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.A04.pan |
https://mssanz.org.au/modsim2025/files/A04.pan.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
C |
| Huang Y (Yuanyuan) |
Estimating fractions of N₂O emissions from nitrification and denitrification using data assimilation |
Pan B, Huang Y, Xia L, Luo Y, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.A04.pan |
https://mssanz.org.au/modsim2025/files/A04.pan.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
H |
| Lam SK (Shu Kee) |
Estimating fractions of N₂O emissions from nitrification and denitrification using data assimilation |
Pan B, Huang Y, Xia L, Luo Y, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.A04.pan |
https://mssanz.org.au/modsim2025/files/A04.pan.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
L |
| Luo Y (Yiqi) |
Estimating fractions of N₂O emissions from nitrification and denitrification using data assimilation |
Pan B, Huang Y, Xia L, Luo Y, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.A04.pan |
https://mssanz.org.au/modsim2025/files/A04.pan.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
L |
| Pan B (Baobao) |
Estimating fractions of N₂O emissions from nitrification and denitrification using data assimilation |
Pan B, Huang Y, Xia L, Luo Y, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.A04.pan |
https://mssanz.org.au/modsim2025/files/A04.pan.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
P |
| Xia L (Longlong) |
Estimating fractions of N₂O emissions from nitrification and denitrification using data assimilation |
Pan B, Huang Y, Xia L, Luo Y, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.A04.pan |
https://mssanz.org.au/modsim2025/files/A04.pan.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
X |
| Canadell J |
Estimating land-to-coast ocean fluxes of dissolved organic carbon using satellite observations and catchment models (INVITED SPEAKER) |
Unnithan SLK, Cherukuru N, Lehmann E, Ingleton T, Canadell J |
https://doi.org/10.36334/modsim2025.L01.unnithan |
https://mssanz.org.au/modsim2025/files/L01.unnithan.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
C |
| Cherukuru N |
Estimating land-to-coast ocean fluxes of dissolved organic carbon using satellite observations and catchment models (INVITED SPEAKER) |
Unnithan SLK, Cherukuru N, Lehmann E, Ingleton T, Canadell J |
https://doi.org/10.36334/modsim2025.L01.unnithan |
https://mssanz.org.au/modsim2025/files/L01.unnithan.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
C |
| Ingleton T |
Estimating land-to-coast ocean fluxes of dissolved organic carbon using satellite observations and catchment models (INVITED SPEAKER) |
Unnithan SLK, Cherukuru N, Lehmann E, Ingleton T, Canadell J |
https://doi.org/10.36334/modsim2025.L01.unnithan |
https://mssanz.org.au/modsim2025/files/L01.unnithan.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
I |
| Lehmann E |
Estimating land-to-coast ocean fluxes of dissolved organic carbon using satellite observations and catchment models (INVITED SPEAKER) |
Unnithan SLK, Cherukuru N, Lehmann E, Ingleton T, Canadell J |
https://doi.org/10.36334/modsim2025.L01.unnithan |
https://mssanz.org.au/modsim2025/files/L01.unnithan.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
L |
| Unnithan SLK |
Estimating land-to-coast ocean fluxes of dissolved organic carbon using satellite observations and catchment models (INVITED SPEAKER) |
Unnithan SLK, Cherukuru N, Lehmann E, Ingleton T, Canadell J |
https://doi.org/10.36334/modsim2025.L01.unnithan |
https://mssanz.org.au/modsim2025/files/L01.unnithan.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
U |
| Chan F |
Estimating sparse variance-covariance using shrinkage methods: applications to error components models |
Chan F, Chariag R |
https://doi.org/10.36334/modsim2025.D01.chanf2 |
https://mssanz.org.au/modsim2025/files/D01.chanf2.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
C |
| Chariag R |
Estimating sparse variance-covariance using shrinkage methods: applications to error components models |
Chan F, Chariag R |
https://doi.org/10.36334/modsim2025.D01.chanf2 |
https://mssanz.org.au/modsim2025/files/D01.chanf2.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
C |
| Gibbs MS |
Estimating streamflow discharge using the ‘wisdom of the crowd’ |
Petheram C, Gibbs M, Hughes J, Seo L |
https://doi.org/10.36334/modsim2025.J03.petheram |
https://mssanz.org.au/modsim2025/files/J03.petheram.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
G |
| Hughes J |
Estimating streamflow discharge using the ‘wisdom of the crowd’ |
Petheram C, Gibbs M, Hughes J, Seo L |
https://doi.org/10.36334/modsim2025.J03.petheram |
https://mssanz.org.au/modsim2025/files/J03.petheram.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
H |
| Petheram C |
Estimating streamflow discharge using the ‘wisdom of the crowd’ |
Petheram C, Gibbs M, Hughes J, Seo L |
https://doi.org/10.36334/modsim2025.J03.petheram |
https://mssanz.org.au/modsim2025/files/J03.petheram.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
P |
| Seo L |
Estimating streamflow discharge using the ‘wisdom of the crowd’ |
Petheram C, Gibbs M, Hughes J, Seo L |
https://doi.org/10.36334/modsim2025.J03.petheram |
https://mssanz.org.au/modsim2025/files/J03.petheram.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
S |
| Guo X |
Estimating surface water fractions for enhanced flood monitoring |
Guo X, Wang QJ, Western A, Ryu D, Sharples W |
https://doi.org/10.36334/modsim2025.G09.guo |
https://mssanz.org.au/modsim2025/files/G09.guo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
G |
| Ryu D |
Estimating surface water fractions for enhanced flood monitoring |
Guo X, Wang QJ, Western A, Ryu D, Sharples W |
https://doi.org/10.36334/modsim2025.G09.guo |
https://mssanz.org.au/modsim2025/files/G09.guo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
R |
| Sharples W |
Estimating surface water fractions for enhanced flood monitoring |
Guo X, Wang QJ, Western A, Ryu D, Sharples W |
https://doi.org/10.36334/modsim2025.G09.guo |
https://mssanz.org.au/modsim2025/files/G09.guo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
S |
| Wang QJ |
Estimating surface water fractions for enhanced flood monitoring |
Guo X, Wang QJ, Western A, Ryu D, Sharples W |
https://doi.org/10.36334/modsim2025.G09.guo |
https://mssanz.org.au/modsim2025/files/G09.guo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
W |
| Western A |
Estimating surface water fractions for enhanced flood monitoring |
Guo X, Wang QJ, Western A, Ryu D, Sharples W |
https://doi.org/10.36334/modsim2025.G09.guo |
https://mssanz.org.au/modsim2025/files/G09.guo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
W |
| Hou W |
Estimation of land evapotranspiration over China based on Fengyun satellite |
Hou W, Zhang Y |
https://doi.org/10.36334/modsim2025.J10.hou |
https://mssanz.org.au/modsim2025/files/J10.hou.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
H |
| Zhang Y (Yongqiang) |
Estimation of land evapotranspiration over China based on Fengyun satellite |
Hou W, Zhang Y |
https://doi.org/10.36334/modsim2025.J10.hou |
https://mssanz.org.au/modsim2025/files/J10.hou.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
Z |
| Jiang Z (Ze) |
Evaluating stochastic weather generators for simulating hydrological extremes |
Johnson F, Jiang Z, Stephens C |
https://doi.org/10.36334/modsim2025.J05.johnson |
https://mssanz.org.au/modsim2025/files/J05.johnson.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
J |
| Johnson F |
Evaluating stochastic weather generators for simulating hydrological extremes |
Johnson F, Jiang Z, Stephens C |
https://doi.org/10.36334/modsim2025.J05.johnson |
https://mssanz.org.au/modsim2025/files/J05.johnson.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
J |
| Stephens C |
Evaluating stochastic weather generators for simulating hydrological extremes |
Johnson F, Jiang Z, Stephens C |
https://doi.org/10.36334/modsim2025.J05.johnson |
https://mssanz.org.au/modsim2025/files/J05.johnson.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
S |
| Brentnall S |
Evaluating strategies to improve patient and staff outcomes in a distributed paediatric ICU: A simulation study at the Children’s Hospital at Westmead |
Currie DJ, Brentnall S, Festa M |
https://doi.org/10.36334/modsim2025.H02.currie |
https://mssanz.org.au/modsim2025/files/H02.currie.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
B |
| Currie DJ |
Evaluating strategies to improve patient and staff outcomes in a distributed paediatric ICU: A simulation study at the Children’s Hospital at Westmead |
Currie DJ, Brentnall S, Festa M |
https://doi.org/10.36334/modsim2025.H02.currie |
https://mssanz.org.au/modsim2025/files/H02.currie.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
C |
| Festa M |
Evaluating strategies to improve patient and staff outcomes in a distributed paediatric ICU: A simulation study at the Children’s Hospital at Westmead |
Currie DJ, Brentnall S, Festa M |
https://doi.org/10.36334/modsim2025.H02.currie |
https://mssanz.org.au/modsim2025/files/H02.currie.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
F |
| Cuddy SM |
Evaluating the ecological outcomes of environmental watering: the role of the counterfactual |
Cuddy SM |
https://doi.org/10.36334/modsim2025.F04.cuddy |
https://mssanz.org.au/modsim2025/files/F04.cuddy.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
C |
| Robertson‑Wall MG |
Evaluating whether the A-VIX improves volatility forecasts in the Australian equity market |
Robertson‑Wall M G |
https://doi.org/10.36334/modsim2025.D06.robertsonwall |
https://mssanz.org.au/modsim2025/files/D06.robertsonwall.pdf |
D |
Economics and finance |
D6 |
Applications of new technologies or methods in economics and finance |
R |
| Han SC |
Evaluating WRF-Hydro model reliability for water resource assessment in a semi-arid catchment of Australia |
Wickramarachchi M, Khaki M, Yeo IY, Han SC |
https://doi.org/10.36334/modsim2025.J10.wickramarachchi |
https://mssanz.org.au/modsim2025/files/J10.wickramarachchi.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
H |
| Khaki M |
Evaluating WRF-Hydro model reliability for water resource assessment in a semi-arid catchment of Australia |
Wickramarachchi M, Khaki M, Yeo IY, Han SC |
https://doi.org/10.36334/modsim2025.J10.wickramarachchi |
https://mssanz.org.au/modsim2025/files/J10.wickramarachchi.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
K |
| Wickramarachchi M |
Evaluating WRF-Hydro model reliability for water resource assessment in a semi-arid catchment of Australia |
Wickramarachchi M, Khaki M, Yeo IY, Han SC |
https://doi.org/10.36334/modsim2025.J10.wickramarachchi |
https://mssanz.org.au/modsim2025/files/J10.wickramarachchi.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
W |
| Yeo IY |
Evaluating WRF-Hydro model reliability for water resource assessment in a semi-arid catchment of Australia |
Wickramarachchi M, Khaki M, Yeo IY, Han SC |
https://doi.org/10.36334/modsim2025.J10.wickramarachchi |
https://mssanz.org.au/modsim2025/files/J10.wickramarachchi.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
Y |
| Alam MMT |
Evaluation of empirical and radiative transfer modelling for estimating biochemistry using remote sensing data |
Simic Milas A, Alam MMT |
https://doi.org/10.36334/modsim2025.F11.simicmilas |
https://mssanz.org.au/modsim2025/files/F11.simicmilas.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
A |
| Simic Milas A |
Evaluation of empirical and radiative transfer modelling for estimating biochemistry using remote sensing data |
Simic Milas A, Alam MMT |
https://doi.org/10.36334/modsim2025.F11.simicmilas |
https://mssanz.org.au/modsim2025/files/F11.simicmilas.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
S |
| Yang X |
Event-based erosion modelling - A case study of ex-tropical cyclone Alfred |
Yang X, Zhu EQ |
https://doi.org/10.36334/modsim2025.G09.yang |
https://mssanz.org.au/modsim2025/files/G09.yang.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
Y |
| Zhu EQ (Esther Qinggaozi) |
Event-based erosion modelling - A case study of ex-tropical cyclone Alfred |
Yang X, Zhu EQ |
https://doi.org/10.36334/modsim2025.G09.yang |
https://mssanz.org.au/modsim2025/files/G09.yang.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
Z |
| Sun Z |
Exploring geographical modal and its implication to support geographical integration |
Sun Z |
https://doi.org/10.36334/modsim2025.C04.sun |
https://mssanz.org.au/modsim2025/files/C04.sun.pdf |
C |
Computer science and engineering |
C4 |
Open and intelligent modeling and simulation |
S |
| Xu Z (Zhenwu) |
Extended global evapotranspiration and gross primary production dataset for 1981–2024 |
Xu Z, Zhang Y |
https://doi.org/10.36334/modsim2025.K03.xu |
https://mssanz.org.au/modsim2025/files/K03.xu.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
X |
| Zhang Y (Yongqiang) |
Extended global evapotranspiration and gross primary production dataset for 1981–2024 |
Xu Z, Zhang Y |
https://doi.org/10.36334/modsim2025.K03.xu |
https://mssanz.org.au/modsim2025/files/K03.xu.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
Z |
| Elliott AH |
Extended uncertainty analysis for the simple catchment load model SPARROW and implications for water management |
Elliott AH, Semadeni-Davies AF |
https://doi.org/10.36334/modsim2025.L01.elliott |
https://mssanz.org.au/modsim2025/files/L01.elliott.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
E |
| Semadeni-Davies AF |
Extended uncertainty analysis for the simple catchment load model SPARROW and implications for water management |
Elliott AH, Semadeni-Davies AF |
https://doi.org/10.36334/modsim2025.L01.elliott |
https://mssanz.org.au/modsim2025/files/L01.elliott.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
S |
| Harley MD |
Extreme coastal wave events: assessing global cumulative energy trends and wind forcing resolution impacts |
Villalba IB, Harley MD, Sharma A |
https://doi.org/10.36334/modsim2025.G04.villalba |
https://mssanz.org.au/modsim2025/files/G04.villalba.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
H |
| Sharma A |
Extreme coastal wave events: assessing global cumulative energy trends and wind forcing resolution impacts |
Villalba IB, Harley MD, Sharma A |
https://doi.org/10.36334/modsim2025.G04.villalba |
https://mssanz.org.au/modsim2025/files/G04.villalba.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
S |
| Villalba IB |
Extreme coastal wave events: assessing global cumulative energy trends and wind forcing resolution impacts |
Villalba IB, Harley MD, Sharma A |
https://doi.org/10.36334/modsim2025.G04.villalba |
https://mssanz.org.au/modsim2025/files/G04.villalba.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
V |
| May RJ |
Facilitating techno-economic evaluation of green hydrogen production pathways through accessible optimisation |
May RJ, Thomson ME |
https://doi.org/10.36334/modsim2025.E02.may |
https://mssanz.org.au/modsim2025/files/E02.may.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
M |
| Thomson ME |
Facilitating techno-economic evaluation of green hydrogen production pathways through accessible optimisation |
May RJ, Thomson ME |
https://doi.org/10.36334/modsim2025.E02.may |
https://mssanz.org.au/modsim2025/files/E02.may.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
T |
| Dzator J |
Facilities for addressing disaster challenges and promoting economic development in Africa |
Dzator M, Simelane P, Dzator J |
https://doi.org/10.36334/modsim2025.G03.dzator |
https://mssanz.org.au/modsim2025/files/G03.dzator.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
D |
| Dzator M |
Facilities for addressing disaster challenges and promoting economic development in Africa |
Dzator M, Simelane P, Dzator J |
https://doi.org/10.36334/modsim2025.G03.dzator |
https://mssanz.org.au/modsim2025/files/G03.dzator.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
D |
| Simelane P |
Facilities for addressing disaster challenges and promoting economic development in Africa |
Dzator M, Simelane P, Dzator J |
https://doi.org/10.36334/modsim2025.G03.dzator |
https://mssanz.org.au/modsim2025/files/G03.dzator.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
S |
| Singh R |
Factor models in housing research: Addressing methodlogical gaps for enhanced policy decision-making |
Singh R |
https://doi.org/10.36334/modsim2025.D05.singh |
https://mssanz.org.au/modsim2025/files/D05.singh.pdf |
D |
Economics and finance |
D5 |
Decision-making under uncertainty in economics and finance |
S |
| Quaine PF |
Farm dam and licenced diversions under climate change |
Quaine PF |
https://doi.org/10.36334/modsim2025.J02.quaine |
https://mssanz.org.au/modsim2025/files/J02.quaine.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
Q |
| Boston T |
Fine-tuning remote sensing foundation models for improved live fuel moisture content estimation |
Boston T, Yebra M |
https://doi.org/10.36334/modsim2025.F08.boston |
https://mssanz.org.au/modsim2025/files/F08.boston.pdf |
F |
Environment and ecology |
F8 |
GIS and environmental modelling |
B |
| Yebra M |
Fine-tuning remote sensing foundation models for improved live fuel moisture content estimation |
Boston T, Yebra M |
https://doi.org/10.36334/modsim2025.F08.boston |
https://mssanz.org.au/modsim2025/files/F08.boston.pdf |
F |
Environment and ecology |
F8 |
GIS and environmental modelling |
Y |
| Brennan E |
FIRM: cloud-native integration framework for basin-scale hydrological modelling in the Murray-Darling Basin |
Gijsbers P, de Kleermaeker S, Urich C, Rahman J, Fuller J, Brennan E, Peralta L, Vorreiter D, Cressall B, Price N, Dixon S |
https://doi.org/10.36334/modsim2025.J02.gijsbers |
https://mssanz.org.au/modsim2025/files/J02.gijsbers.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
B |
| Cressall B |
FIRM: cloud-native integration framework for basin-scale hydrological modelling in the Murray-Darling Basin |
Gijsbers P, de Kleermaeker S, Urich C, Rahman J, Fuller J, Brennan E, Peralta L, Vorreiter D, Cressall B, Price N, Dixon S |
https://doi.org/10.36334/modsim2025.J02.gijsbers |
https://mssanz.org.au/modsim2025/files/J02.gijsbers.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
C |
| de Kleermaeker S |
FIRM: cloud-native integration framework for basin-scale hydrological modelling in the Murray-Darling Basin |
Gijsbers P, de Kleermaeker S, Urich C, Rahman J, Fuller J, Brennan E, Peralta L, Vorreiter D, Cressall B, Price N, Dixon S |
https://doi.org/10.36334/modsim2025.J02.gijsbers |
https://mssanz.org.au/modsim2025/files/J02.gijsbers.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
d |
| Dixon S |
FIRM: cloud-native integration framework for basin-scale hydrological modelling in the Murray-Darling Basin |
Gijsbers P, de Kleermaeker S, Urich C, Rahman J, Fuller J, Brennan E, Peralta L, Vorreiter D, Cressall B, Price N, Dixon S |
https://doi.org/10.36334/modsim2025.J02.gijsbers |
https://mssanz.org.au/modsim2025/files/J02.gijsbers.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
D |
| Fuller J |
FIRM: cloud-native integration framework for basin-scale hydrological modelling in the Murray-Darling Basin |
Gijsbers P, de Kleermaeker S, Urich C, Rahman J, Fuller J, Brennan E, Peralta L, Vorreiter D, Cressall B, Price N, Dixon S |
https://doi.org/10.36334/modsim2025.J02.gijsbers |
https://mssanz.org.au/modsim2025/files/J02.gijsbers.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
F |
| Gijsbers P |
FIRM: cloud-native integration framework for basin-scale hydrological modelling in the Murray-Darling Basin |
Gijsbers P, de Kleermaeker S, Urich C, Rahman J, Fuller J, Brennan E, Peralta L, Vorreiter D, Cressall B, Price N, Dixon S |
https://doi.org/10.36334/modsim2025.J02.gijsbers |
https://mssanz.org.au/modsim2025/files/J02.gijsbers.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
G |
| Peralta L |
FIRM: cloud-native integration framework for basin-scale hydrological modelling in the Murray-Darling Basin |
Gijsbers P, de Kleermaeker S, Urich C, Rahman J, Fuller J, Brennan E, Peralta L, Vorreiter D, Cressall B, Price N, Dixon S |
https://doi.org/10.36334/modsim2025.J02.gijsbers |
https://mssanz.org.au/modsim2025/files/J02.gijsbers.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
P |
| Price N |
FIRM: cloud-native integration framework for basin-scale hydrological modelling in the Murray-Darling Basin |
Gijsbers P, de Kleermaeker S, Urich C, Rahman J, Fuller J, Brennan E, Peralta L, Vorreiter D, Cressall B, Price N, Dixon S |
https://doi.org/10.36334/modsim2025.J02.gijsbers |
https://mssanz.org.au/modsim2025/files/J02.gijsbers.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
P |
| Rahman J (Joel) |
FIRM: cloud-native integration framework for basin-scale hydrological modelling in the Murray-Darling Basin |
Gijsbers P, de Kleermaeker S, Urich C, Rahman J, Fuller J, Brennan E, Peralta L, Vorreiter D, Cressall B, Price N, Dixon S |
https://doi.org/10.36334/modsim2025.J02.gijsbers |
https://mssanz.org.au/modsim2025/files/J02.gijsbers.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
R |
| Urich C |
FIRM: cloud-native integration framework for basin-scale hydrological modelling in the Murray-Darling Basin |
Gijsbers P, de Kleermaeker S, Urich C, Rahman J, Fuller J, Brennan E, Peralta L, Vorreiter D, Cressall B, Price N, Dixon S |
https://doi.org/10.36334/modsim2025.J02.gijsbers |
https://mssanz.org.au/modsim2025/files/J02.gijsbers.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
U |
| Vorreiter D |
FIRM: cloud-native integration framework for basin-scale hydrological modelling in the Murray-Darling Basin |
Gijsbers P, de Kleermaeker S, Urich C, Rahman J, Fuller J, Brennan E, Peralta L, Vorreiter D, Cressall B, Price N, Dixon S |
https://doi.org/10.36334/modsim2025.J02.gijsbers |
https://mssanz.org.au/modsim2025/files/J02.gijsbers.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
V |
| Carrara E |
Flash flood nowcasting based on deep learning and radar rainfall estimates |
Hou J, Sharples W, Pudashine J, Thran M, Velasco‑Forero C, Fox‑Hughes P, Carrara E |
https://doi.org/10.36334/modsim2025.C07.hou |
https://mssanz.org.au/modsim2025/files/C07.hou.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
C |
| Fox‑Hughes P |
Flash flood nowcasting based on deep learning and radar rainfall estimates |
Hou J, Sharples W, Pudashine J, Thran M, Velasco‑Forero C, Fox‑Hughes P, Carrara E |
https://doi.org/10.36334/modsim2025.C07.hou |
https://mssanz.org.au/modsim2025/files/C07.hou.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
F |
| Hou J |
Flash flood nowcasting based on deep learning and radar rainfall estimates |
Hou J, Sharples W, Pudashine J, Thran M, Velasco‑Forero C, Fox‑Hughes P, Carrara E |
https://doi.org/10.36334/modsim2025.C07.hou |
https://mssanz.org.au/modsim2025/files/C07.hou.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
H |
| Pudashine J |
Flash flood nowcasting based on deep learning and radar rainfall estimates |
Hou J, Sharples W, Pudashine J, Thran M, Velasco‑Forero C, Fox‑Hughes P, Carrara E |
https://doi.org/10.36334/modsim2025.C07.hou |
https://mssanz.org.au/modsim2025/files/C07.hou.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
P |
| Sharples W |
Flash flood nowcasting based on deep learning and radar rainfall estimates |
Hou J, Sharples W, Pudashine J, Thran M, Velasco‑Forero C, Fox‑Hughes P, Carrara E |
https://doi.org/10.36334/modsim2025.C07.hou |
https://mssanz.org.au/modsim2025/files/C07.hou.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
S |
| Thran M |
Flash flood nowcasting based on deep learning and radar rainfall estimates |
Hou J, Sharples W, Pudashine J, Thran M, Velasco‑Forero C, Fox‑Hughes P, Carrara E |
https://doi.org/10.36334/modsim2025.C07.hou |
https://mssanz.org.au/modsim2025/files/C07.hou.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
T |
| Velasco‑Forero C |
Flash flood nowcasting based on deep learning and radar rainfall estimates |
Hou J, Sharples W, Pudashine J, Thran M, Velasco‑Forero C, Fox‑Hughes P, Carrara E |
https://doi.org/10.36334/modsim2025.C07.hou |
https://mssanz.org.au/modsim2025/files/C07.hou.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
V |
| Chiew FHS |
Floodplain inundation modelling using CaMa-Flood across the Murray-Darling Basin |
Khan Z, Chiew F, Zheng H, Teng J, Devanand A, Post D, Robertson DE, Gibbs M, Karim F, Mateo C |
https://doi.org/10.36334/modsim2025.G09.khan |
https://mssanz.org.au/modsim2025/files/G09.khan.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
C |
| Devanand A |
Floodplain inundation modelling using CaMa-Flood across the Murray-Darling Basin |
Khan Z, Chiew F, Zheng H, Teng J, Devanand A, Post D, Robertson DE, Gibbs M, Karim F, Mateo C |
https://doi.org/10.36334/modsim2025.G09.khan |
https://mssanz.org.au/modsim2025/files/G09.khan.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
D |
| Gibbs MS |
Floodplain inundation modelling using CaMa-Flood across the Murray-Darling Basin |
Khan Z, Chiew F, Zheng H, Teng J, Devanand A, Post D, Robertson DE, Gibbs M, Karim F, Mateo C |
https://doi.org/10.36334/modsim2025.G09.khan |
https://mssanz.org.au/modsim2025/files/G09.khan.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
G |
| Karim F |
Floodplain inundation modelling using CaMa-Flood across the Murray-Darling Basin |
Khan Z, Chiew F, Zheng H, Teng J, Devanand A, Post D, Robertson DE, Gibbs M, Karim F, Mateo C |
https://doi.org/10.36334/modsim2025.G09.khan |
https://mssanz.org.au/modsim2025/files/G09.khan.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
K |
| Khan Z (Zaved) |
Floodplain inundation modelling using CaMa-Flood across the Murray-Darling Basin |
Khan Z, Chiew F, Zheng H, Teng J, Devanand A, Post D, Robertson DE, Gibbs M, Karim F, Mateo C |
https://doi.org/10.36334/modsim2025.G09.khan |
https://mssanz.org.au/modsim2025/files/G09.khan.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
K |
| Mateo C |
Floodplain inundation modelling using CaMa-Flood across the Murray-Darling Basin |
Khan Z, Chiew F, Zheng H, Teng J, Devanand A, Post D, Robertson DE, Gibbs M, Karim F, Mateo C |
https://doi.org/10.36334/modsim2025.G09.khan |
https://mssanz.org.au/modsim2025/files/G09.khan.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
M |
| Post D |
Floodplain inundation modelling using CaMa-Flood across the Murray-Darling Basin |
Khan Z, Chiew F, Zheng H, Teng J, Devanand A, Post D, Robertson DE, Gibbs M, Karim F, Mateo C |
https://doi.org/10.36334/modsim2025.G09.khan |
https://mssanz.org.au/modsim2025/files/G09.khan.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
P |
| Robertson DE |
Floodplain inundation modelling using CaMa-Flood across the Murray-Darling Basin |
Khan Z, Chiew F, Zheng H, Teng J, Devanand A, Post D, Robertson DE, Gibbs M, Karim F, Mateo C |
https://doi.org/10.36334/modsim2025.G09.khan |
https://mssanz.org.au/modsim2025/files/G09.khan.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
R |
| Teng J |
Floodplain inundation modelling using CaMa-Flood across the Murray-Darling Basin |
Khan Z, Chiew F, Zheng H, Teng J, Devanand A, Post D, Robertson DE, Gibbs M, Karim F, Mateo C |
https://doi.org/10.36334/modsim2025.G09.khan |
https://mssanz.org.au/modsim2025/files/G09.khan.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
T |
| Zheng H (Hongzing) |
Floodplain inundation modelling using CaMa-Flood across the Murray-Darling Basin |
Khan Z, Chiew F, Zheng H, Teng J, Devanand A, Post D, Robertson DE, Gibbs M, Karim F, Mateo C |
https://doi.org/10.36334/modsim2025.G09.khan |
https://mssanz.org.au/modsim2025/files/G09.khan.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
Z |
| Blakely T |
Forecasting all risk factors for all countries |
Wilson T, Dhungel B, Blakely T |
https://doi.org/10.36334/modsim2025.H02.wilson |
https://mssanz.org.au/modsim2025/files/H02.wilson.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
B |
| Dhungel B |
Forecasting all risk factors for all countries |
Wilson T, Dhungel B, Blakely T |
https://doi.org/10.36334/modsim2025.H02.wilson |
https://mssanz.org.au/modsim2025/files/H02.wilson.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
D |
| Wilson T |
Forecasting all risk factors for all countries |
Wilson T, Dhungel B, Blakely T |
https://doi.org/10.36334/modsim2025.H02.wilson |
https://mssanz.org.au/modsim2025/files/H02.wilson.pdf |
H |
Health and biosecurity |
H2 |
Data science and simulation modelling methods in health |
W |
| Arisian S |
Forecasting Australian pulse export trade flows and uncovering key trade determinants using machine learning |
Perera DN, Arisian S, Du Y, Jayatilleke S, Nguyen S |
https://doi.org/10.36334/modsim2025.D04.perera |
https://mssanz.org.au/modsim2025/files/D04.perera.pdf |
D |
Economics and finance |
D4 |
International Trade, Supply Chains, and Global Markets |
A |
| Du Y |
Forecasting Australian pulse export trade flows and uncovering key trade determinants using machine learning |
Perera DN, Arisian S, Du Y, Jayatilleke S, Nguyen S |
https://doi.org/10.36334/modsim2025.D04.perera |
https://mssanz.org.au/modsim2025/files/D04.perera.pdf |
D |
Economics and finance |
D4 |
International Trade, Supply Chains, and Global Markets |
D |
| Jayatilleke S |
Forecasting Australian pulse export trade flows and uncovering key trade determinants using machine learning |
Perera DN, Arisian S, Du Y, Jayatilleke S, Nguyen S |
https://doi.org/10.36334/modsim2025.D04.perera |
https://mssanz.org.au/modsim2025/files/D04.perera.pdf |
D |
Economics and finance |
D4 |
International Trade, Supply Chains, and Global Markets |
J |
| Nguyen S |
Forecasting Australian pulse export trade flows and uncovering key trade determinants using machine learning |
Perera DN, Arisian S, Du Y, Jayatilleke S, Nguyen S |
https://doi.org/10.36334/modsim2025.D04.perera |
https://mssanz.org.au/modsim2025/files/D04.perera.pdf |
D |
Economics and finance |
D4 |
International Trade, Supply Chains, and Global Markets |
N |
| Perera DN |
Forecasting Australian pulse export trade flows and uncovering key trade determinants using machine learning |
Perera DN, Arisian S, Du Y, Jayatilleke S, Nguyen S |
https://doi.org/10.36334/modsim2025.D04.perera |
https://mssanz.org.au/modsim2025/files/D04.perera.pdf |
D |
Economics and finance |
D4 |
International Trade, Supply Chains, and Global Markets |
P |
| Boland J |
Forecasting diffuse solar radiation |
Boland J |
https://doi.org/10.36334/modsim2025.E01.boland |
https://mssanz.org.au/modsim2025/files/E01.boland.pdf |
E |
Energy, integrated infrastructure and urban planning |
E1 |
Tools for the Energy Transition |
B |
| Carey CC |
Forecasting with FLARE – predicting Lake Alexandrina water quality (INVITED SPEAKER) |
Sims C, Olsson F, Thomas RQ, Hipsey MR, Delany AD, Rumbelow A, Carey CC |
https://doi.org/10.36334/modsim2025.L02.sims |
https://mssanz.org.au/modsim2025/files/L02.sims.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
C |
| Delany AD |
Forecasting with FLARE – predicting Lake Alexandrina water quality (INVITED SPEAKER) |
Sims C, Olsson F, Thomas RQ, Hipsey MR, Delany AD, Rumbelow A, Carey CC |
https://doi.org/10.36334/modsim2025.L02.sims |
https://mssanz.org.au/modsim2025/files/L02.sims.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
D |
| Hipsey MR |
Forecasting with FLARE – predicting Lake Alexandrina water quality (INVITED SPEAKER) |
Sims C, Olsson F, Thomas RQ, Hipsey MR, Delany AD, Rumbelow A, Carey CC |
https://doi.org/10.36334/modsim2025.L02.sims |
https://mssanz.org.au/modsim2025/files/L02.sims.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
H |
| Olsson F |
Forecasting with FLARE – predicting Lake Alexandrina water quality (INVITED SPEAKER) |
Sims C, Olsson F, Thomas RQ, Hipsey MR, Delany AD, Rumbelow A, Carey CC |
https://doi.org/10.36334/modsim2025.L02.sims |
https://mssanz.org.au/modsim2025/files/L02.sims.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
O |
| Rumbelow A |
Forecasting with FLARE – predicting Lake Alexandrina water quality (INVITED SPEAKER) |
Sims C, Olsson F, Thomas RQ, Hipsey MR, Delany AD, Rumbelow A, Carey CC |
https://doi.org/10.36334/modsim2025.L02.sims |
https://mssanz.org.au/modsim2025/files/L02.sims.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
R |
| Sims C |
Forecasting with FLARE – predicting Lake Alexandrina water quality (INVITED SPEAKER) |
Sims C, Olsson F, Thomas RQ, Hipsey MR, Delany AD, Rumbelow A, Carey CC |
https://doi.org/10.36334/modsim2025.L02.sims |
https://mssanz.org.au/modsim2025/files/L02.sims.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
S |
| Thomas RQ |
Forecasting with FLARE – predicting Lake Alexandrina water quality (INVITED SPEAKER) |
Sims C, Olsson F, Thomas RQ, Hipsey MR, Delany AD, Rumbelow A, Carey CC |
https://doi.org/10.36334/modsim2025.L02.sims |
https://mssanz.org.au/modsim2025/files/L02.sims.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
T |
| Cohen RCZ |
Framework for deriving future hazard layers from future climate data for physical climate risk assessments |
Cohen RCZ, Lee G, Garg N, Prakash M, Trinh K |
https://doi.org/10.36334/modsim2025.G03.cohen |
https://mssanz.org.au/modsim2025/files/G03.cohen.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
C |
| Garg N |
Framework for deriving future hazard layers from future climate data for physical climate risk assessments |
Cohen RCZ, Lee G, Garg N, Prakash M, Trinh K |
https://doi.org/10.36334/modsim2025.G03.cohen |
https://mssanz.org.au/modsim2025/files/G03.cohen.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
G |
| Lee G |
Framework for deriving future hazard layers from future climate data for physical climate risk assessments |
Cohen RCZ, Lee G, Garg N, Prakash M, Trinh K |
https://doi.org/10.36334/modsim2025.G03.cohen |
https://mssanz.org.au/modsim2025/files/G03.cohen.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
L |
| Prakash M |
Framework for deriving future hazard layers from future climate data for physical climate risk assessments |
Cohen RCZ, Lee G, Garg N, Prakash M, Trinh K |
https://doi.org/10.36334/modsim2025.G03.cohen |
https://mssanz.org.au/modsim2025/files/G03.cohen.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
P |
| Trinh K |
Framework for deriving future hazard layers from future climate data for physical climate risk assessments |
Cohen RCZ, Lee G, Garg N, Prakash M, Trinh K |
https://doi.org/10.36334/modsim2025.G03.cohen |
https://mssanz.org.au/modsim2025/files/G03.cohen.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
T |
| Babcock R |
From climate refugium to heatwave epicentre: Will the 2025 Ningaloo bleaching become a new normal? |
Sun C, Cyriac A, Copcutt M, Greenwood J, Melbourne‑Thomas J, Thomson D, Sheppard M, Babcock R, Slawinski D, D’Adamo N, Taylor J |
https://doi.org/10.36334/modsim2025.F09.sun |
https://mssanz.org.au/modsim2025/files/F09.sun.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
B |
| Copcutt M |
From climate refugium to heatwave epicentre: Will the 2025 Ningaloo bleaching become a new normal? |
Sun C, Cyriac A, Copcutt M, Greenwood J, Melbourne‑Thomas J, Thomson D, Sheppard M, Babcock R, Slawinski D, D’Adamo N, Taylor J |
https://doi.org/10.36334/modsim2025.F09.sun |
https://mssanz.org.au/modsim2025/files/F09.sun.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
C |
| Cyriac A |
From climate refugium to heatwave epicentre: Will the 2025 Ningaloo bleaching become a new normal? |
Sun C, Cyriac A, Copcutt M, Greenwood J, Melbourne‑Thomas J, Thomson D, Sheppard M, Babcock R, Slawinski D, D’Adamo N, Taylor J |
https://doi.org/10.36334/modsim2025.F09.sun |
https://mssanz.org.au/modsim2025/files/F09.sun.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
C |
| D’Adamo N |
From climate refugium to heatwave epicentre: Will the 2025 Ningaloo bleaching become a new normal? |
Sun C, Cyriac A, Copcutt M, Greenwood J, Melbourne‑Thomas J, Thomson D, Sheppard M, Babcock R, Slawinski D, D’Adamo N, Taylor J |
https://doi.org/10.36334/modsim2025.F09.sun |
https://mssanz.org.au/modsim2025/files/F09.sun.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
D |
| Greenwood J |
From climate refugium to heatwave epicentre: Will the 2025 Ningaloo bleaching become a new normal? |
Sun C, Cyriac A, Copcutt M, Greenwood J, Melbourne‑Thomas J, Thomson D, Sheppard M, Babcock R, Slawinski D, D’Adamo N, Taylor J |
https://doi.org/10.36334/modsim2025.F09.sun |
https://mssanz.org.au/modsim2025/files/F09.sun.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
G |
| Melbourne-Thomas J |
From climate refugium to heatwave epicentre: Will the 2025 Ningaloo bleaching become a new normal? |
Sun C, Cyriac A, Copcutt M, Greenwood J, Melbourne‑Thomas J, Thomson D, Sheppard M, Babcock R, Slawinski D, D’Adamo N, Taylor J |
https://doi.org/10.36334/modsim2025.F09.sun |
https://mssanz.org.au/modsim2025/files/F09.sun.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
M |
| Sheppard M |
From climate refugium to heatwave epicentre: Will the 2025 Ningaloo bleaching become a new normal? |
Sun C, Cyriac A, Copcutt M, Greenwood J, Melbourne‑Thomas J, Thomson D, Sheppard M, Babcock R, Slawinski D, D’Adamo N, Taylor J |
https://doi.org/10.36334/modsim2025.F09.sun |
https://mssanz.org.au/modsim2025/files/F09.sun.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
S |
| Slawinski D |
From climate refugium to heatwave epicentre: Will the 2025 Ningaloo bleaching become a new normal? |
Sun C, Cyriac A, Copcutt M, Greenwood J, Melbourne‑Thomas J, Thomson D, Sheppard M, Babcock R, Slawinski D, D’Adamo N, Taylor J |
https://doi.org/10.36334/modsim2025.F09.sun |
https://mssanz.org.au/modsim2025/files/F09.sun.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
S |
| Sun C |
From climate refugium to heatwave epicentre: Will the 2025 Ningaloo bleaching become a new normal? |
Sun C, Cyriac A, Copcutt M, Greenwood J, Melbourne‑Thomas J, Thomson D, Sheppard M, Babcock R, Slawinski D, D’Adamo N, Taylor J |
https://doi.org/10.36334/modsim2025.F09.sun |
https://mssanz.org.au/modsim2025/files/F09.sun.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
S |
| Taylor J |
From climate refugium to heatwave epicentre: Will the 2025 Ningaloo bleaching become a new normal? |
Sun C, Cyriac A, Copcutt M, Greenwood J, Melbourne‑Thomas J, Thomson D, Sheppard M, Babcock R, Slawinski D, D’Adamo N, Taylor J |
https://doi.org/10.36334/modsim2025.F09.sun |
https://mssanz.org.au/modsim2025/files/F09.sun.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
T |
| Thomson D |
From climate refugium to heatwave epicentre: Will the 2025 Ningaloo bleaching become a new normal? |
Sun C, Cyriac A, Copcutt M, Greenwood J, Melbourne‑Thomas J, Thomson D, Sheppard M, Babcock R, Slawinski D, D’Adamo N, Taylor J |
https://doi.org/10.36334/modsim2025.F09.sun |
https://mssanz.org.au/modsim2025/files/F09.sun.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
T |
| Aly E |
From competing to complementary: Digital engineering ecosystems as Net Zero Enablers |
Aly E, Elsawah S |
https://doi.org/10.36334/modsim2025.F05.aly |
https://mssanz.org.au/modsim2025/files/F05.aly.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
A |
| Elsawah S |
From competing to complementary: Digital engineering ecosystems as Net Zero Enablers |
Aly E, Elsawah S |
https://doi.org/10.36334/modsim2025.F05.aly |
https://mssanz.org.au/modsim2025/files/F05.aly.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
E |
| Greenville A |
From data gaps to climate projections: A framework for forecasting species population abundance |
Gunadasa V, Greenville A, Wardle GM |
https://doi.org/10.36334/modsim2025.F09.gunadasa |
https://mssanz.org.au/modsim2025/files/F09.gunadasa.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
G |
| Gunadasa V |
From data gaps to climate projections: A framework for forecasting species population abundance |
Gunadasa V, Greenville A, Wardle GM |
https://doi.org/10.36334/modsim2025.F09.gunadasa |
https://mssanz.org.au/modsim2025/files/F09.gunadasa.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
G |
| Wardle GM |
From data gaps to climate projections: A framework for forecasting species population abundance |
Gunadasa V, Greenville A, Wardle GM |
https://doi.org/10.36334/modsim2025.F09.gunadasa |
https://mssanz.org.au/modsim2025/files/F09.gunadasa.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
W |
| Durand RB |
From disaster to debt: Exploring the link between natural catastrophes and syndicated loans |
Murad SMW, Durand RB, Zheng C |
https://doi.org/10.36334/modsim2025.D06.murad |
https://mssanz.org.au/modsim2025/files/D06.murad.pdf |
D |
Economics and finance |
D6 |
Applications of new technologies or methods in economics and finance |
D |
| Murad SMW |
From disaster to debt: Exploring the link between natural catastrophes and syndicated loans |
Murad SMW, Durand RB, Zheng C |
https://doi.org/10.36334/modsim2025.D06.murad |
https://mssanz.org.au/modsim2025/files/D06.murad.pdf |
D |
Economics and finance |
D6 |
Applications of new technologies or methods in economics and finance |
M |
| Zheng C |
From disaster to debt: Exploring the link between natural catastrophes and syndicated loans |
Murad SMW, Durand RB, Zheng C |
https://doi.org/10.36334/modsim2025.D06.murad |
https://mssanz.org.au/modsim2025/files/D06.murad.pdf |
D |
Economics and finance |
D6 |
Applications of new technologies or methods in economics and finance |
Z |
| Bennett W |
From monitoring to modelling soil erosion and sediment transport in gullied tropical savanna catchments (INVITED SPEAKER) |
Wynants M, Doriean N, Spencer J, Bennett W, Boeckx P, Brooks A |
https://doi.org/10.36334/modsim2025.L04.wynants |
https://mssanz.org.au/modsim2025/files/L04.wynants.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
B |
| Boeckx P |
From monitoring to modelling soil erosion and sediment transport in gullied tropical savanna catchments (INVITED SPEAKER) |
Wynants M, Doriean N, Spencer J, Bennett W, Boeckx P, Brooks A |
https://doi.org/10.36334/modsim2025.L04.wynants |
https://mssanz.org.au/modsim2025/files/L04.wynants.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
B |
| Brooks A |
From monitoring to modelling soil erosion and sediment transport in gullied tropical savanna catchments (INVITED SPEAKER) |
Wynants M, Doriean N, Spencer J, Bennett W, Boeckx P, Brooks A |
https://doi.org/10.36334/modsim2025.L04.wynants |
https://mssanz.org.au/modsim2025/files/L04.wynants.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
B |
| Doriean N |
From monitoring to modelling soil erosion and sediment transport in gullied tropical savanna catchments (INVITED SPEAKER) |
Wynants M, Doriean N, Spencer J, Bennett W, Boeckx P, Brooks A |
https://doi.org/10.36334/modsim2025.L04.wynants |
https://mssanz.org.au/modsim2025/files/L04.wynants.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
D |
| Spencer J |
From monitoring to modelling soil erosion and sediment transport in gullied tropical savanna catchments (INVITED SPEAKER) |
Wynants M, Doriean N, Spencer J, Bennett W, Boeckx P, Brooks A |
https://doi.org/10.36334/modsim2025.L04.wynants |
https://mssanz.org.au/modsim2025/files/L04.wynants.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
S |
| Wynants M |
From monitoring to modelling soil erosion and sediment transport in gullied tropical savanna catchments (INVITED SPEAKER) |
Wynants M, Doriean N, Spencer J, Bennett W, Boeckx P, Brooks A |
https://doi.org/10.36334/modsim2025.L04.wynants |
https://mssanz.org.au/modsim2025/files/L04.wynants.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
W |
| Akhter F |
From snowmelt to fields: Synthesizing water supply, use, and management gaps across Kabul River Basin |
Akhter F, Awan UK, Borgemeister C, Tischbein B |
https://doi.org/10.36334/modsim2025.K01.akhter |
https://mssanz.org.au/modsim2025/files/K01.akhter.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
A |
| Awan UK |
From snowmelt to fields: Synthesizing water supply, use, and management gaps across Kabul River Basin |
Akhter F, Awan UK, Borgemeister C, Tischbein B |
https://doi.org/10.36334/modsim2025.K01.akhter |
https://mssanz.org.au/modsim2025/files/K01.akhter.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
A |
| Borgemeister C |
From snowmelt to fields: Synthesizing water supply, use, and management gaps across Kabul River Basin |
Akhter F, Awan UK, Borgemeister C, Tischbein B |
https://doi.org/10.36334/modsim2025.K01.akhter |
https://mssanz.org.au/modsim2025/files/K01.akhter.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
B |
| Tischbein B |
From snowmelt to fields: Synthesizing water supply, use, and management gaps across Kabul River Basin |
Akhter F, Awan UK, Borgemeister C, Tischbein B |
https://doi.org/10.36334/modsim2025.K01.akhter |
https://mssanz.org.au/modsim2025/files/K01.akhter.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
T |
| Reeves M T |
Fuel moisture lag effects in fire spread calculations |
Reeves M T, Swedosh W |
https://doi.org/10.36334/modsim2025.G08.reeves |
https://mssanz.org.au/modsim2025/files/G08.reeves.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
R |
| Swedosh W |
Fuel moisture lag effects in fire spread calculations |
Reeves M T, Swedosh W |
https://doi.org/10.36334/modsim2025.G08.reeves |
https://mssanz.org.au/modsim2025/files/G08.reeves.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
S |
| Entwistle H |
Full information problem with random horizon |
Entwistle H, Sofronov G |
https://doi.org/10.36334/modsim2025.A01.entwistle |
https://mssanz.org.au/modsim2025/files/A01.entwistle.pdf |
A |
Applied and computational mathematics |
A1 |
Applied Probability |
E |
| Sofronov G |
Full information problem with random horizon |
Entwistle H, Sofronov G |
https://doi.org/10.36334/modsim2025.A01.entwistle |
https://mssanz.org.au/modsim2025/files/A01.entwistle.pdf |
A |
Applied and computational mathematics |
A1 |
Applied Probability |
S |
| Kapugama Geeganage D |
FUSE: Forecasting with UNSPSC-Enhanced granularity |
Wang E, Kapugama Geeganage D, Kemp O |
https://doi.org/10.36334/modsim2025.D01.wang |
https://mssanz.org.au/modsim2025/files/D01.wang.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
K |
| Kemp O |
FUSE: Forecasting with UNSPSC-Enhanced granularity |
Wang E, Kapugama Geeganage D, Kemp O |
https://doi.org/10.36334/modsim2025.D01.wang |
https://mssanz.org.au/modsim2025/files/D01.wang.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
K |
| Wang E (Erli) |
FUSE: Forecasting with UNSPSC-Enhanced granularity |
Wang E, Kapugama Geeganage D, Kemp O |
https://doi.org/10.36334/modsim2025.D01.wang |
https://mssanz.org.au/modsim2025/files/D01.wang.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
W |
| Liu S |
Gap-filling terrestrial water storage in severe Amazon droughts |
Liu S, McVicar T, Liu Y |
https://doi.org/10.36334/modsim2025.K07.liu |
https://mssanz.org.au/modsim2025/files/K07.liu.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
L |
| Liu Y (Yi) |
Gap-filling terrestrial water storage in severe Amazon droughts |
Liu S, McVicar T, Liu Y |
https://doi.org/10.36334/modsim2025.K07.liu |
https://mssanz.org.au/modsim2025/files/K07.liu.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
L |
| McVicar T |
Gap-filling terrestrial water storage in severe Amazon droughts |
Liu S, McVicar T, Liu Y |
https://doi.org/10.36334/modsim2025.K07.liu |
https://mssanz.org.au/modsim2025/files/K07.liu.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
M |
| Dunne R |
Gender wap gap analysis using machine learning methods |
Dunne D, Saft M, Peel M |
https://doi.org/10.36334/modsim2025.D01.dunne |
https://mssanz.org.au/modsim2025/files/D01.dunne.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
D |
| Chan F |
Generating initial values using artificial neural network |
Chan F |
https://doi.org/10.36334/modsim2025.D01.chan |
https://mssanz.org.au/modsim2025/files/D01.chan.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
C |
| Fakhimi M |
Generative AI applications in system dynamics modelling |
Fakhimi M, Hosseini SH |
https://doi.org/10.36334/modsim2025.I02.fakhimi |
https://mssanz.org.au/modsim2025/files/I02.fakhimi.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I2 |
Advancing System Dynamics Modelling: Integrating Emerging Technologies and Participatory Approaches for Enhanced Decision Support in Social Systems |
F |
| Hosseini SH |
Generative AI applications in system dynamics modelling |
Fakhimi M, Hosseini SH |
https://doi.org/10.36334/modsim2025.I02.fakhimi |
https://mssanz.org.au/modsim2025/files/I02.fakhimi.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I2 |
Advancing System Dynamics Modelling: Integrating Emerging Technologies and Participatory Approaches for Enhanced Decision Support in Social Systems |
H |
| Baker P |
Generative AI enhancing understanding of vast integrated environmental assessments |
Leighton B, Lee A, Baker P |
https://doi.org/10.36334/modsim2025.F10.leighton |
https://mssanz.org.au/modsim2025/files/F10.leighton.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
B |
| Lee A |
Generative AI enhancing understanding of vast integrated environmental assessments |
Leighton B, Lee A, Baker P |
https://doi.org/10.36334/modsim2025.F10.leighton |
https://mssanz.org.au/modsim2025/files/F10.leighton.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
L |
| Leighton B |
Generative AI enhancing understanding of vast integrated environmental assessments |
Leighton B, Lee A, Baker P |
https://doi.org/10.36334/modsim2025.F10.leighton |
https://mssanz.org.au/modsim2025/files/F10.leighton.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
L |
| Akbarzadeh Khorshidi H |
Genomic risk stratification in optimising intermediate risk prostate cancer management in Australia: A discrete event simulation |
Lyu J, Chen G, Corcoran N, Akbarzadeh Khorshidi H |
https://doi.org/10.36334/modsim2025.H03.lyu |
https://mssanz.org.au/modsim2025/files/H03.lyu.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
A |
| Chen G (Gang) |
Genomic risk stratification in optimising intermediate risk prostate cancer management in Australia: A discrete event simulation |
Lyu J, Chen G, Corcoran N, Akbarzadeh Khorshidi H |
https://doi.org/10.36334/modsim2025.H03.lyu |
https://mssanz.org.au/modsim2025/files/H03.lyu.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
C |
| Corcoran N |
Genomic risk stratification in optimising intermediate risk prostate cancer management in Australia: A discrete event simulation |
Lyu J, Chen G, Corcoran N, Akbarzadeh Khorshidi H |
https://doi.org/10.36334/modsim2025.H03.lyu |
https://mssanz.org.au/modsim2025/files/H03.lyu.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
C |
| Lyu J (Juntao) |
Genomic risk stratification in optimising intermediate risk prostate cancer management in Australia: A discrete event simulation |
Lyu J, Chen G, Corcoran N, Akbarzadeh Khorshidi H |
https://doi.org/10.36334/modsim2025.H03.lyu |
https://mssanz.org.au/modsim2025/files/H03.lyu.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
L |
| Chen M (Min) |
Geo-analysis model interoperability in the AI era: Challenges, solutions and future directions |
Zhang F, Chen M |
https://doi.org/10.36334/modsim2025.C04.zhang |
https://mssanz.org.au/modsim2025/files/C04.zhang.pdf |
C |
Computer science and engineering |
C4 |
Open and intelligent modeling and simulation |
C |
| Zhang F (Fengyuan) |
Geo-analysis model interoperability in the AI era: Challenges, solutions and future directions |
Zhang F, Chen M |
https://doi.org/10.36334/modsim2025.C04.zhang |
https://mssanz.org.au/modsim2025/files/C04.zhang.pdf |
C |
Computer science and engineering |
C4 |
Open and intelligent modeling and simulation |
Z |
| Cadavid Restrepo A |
Geostatistical modelling of Lymphatic Filariasis in Samoa using integrated human and mosquito surveillance data |
McLure A, Mayfield HJ, Cadavid Restrepo A, Lau C, McPherson B, Rigby L, Graves P, Thomsen R, Viali S, Sartorius B |
https://doi.org/10.36334/modsim2025.H04.mclure |
https://mssanz.org.au/modsim2025/files/H04.mclure.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
C |
| Graves P |
Geostatistical modelling of Lymphatic Filariasis in Samoa using integrated human and mosquito surveillance data |
McLure A, Mayfield HJ, Cadavid Restrepo A, Lau C, McPherson B, Rigby L, Graves P, Thomsen R, Viali S, Sartorius B |
https://doi.org/10.36334/modsim2025.H04.mclure |
https://mssanz.org.au/modsim2025/files/H04.mclure.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
G |
| Lau C |
Geostatistical modelling of Lymphatic Filariasis in Samoa using integrated human and mosquito surveillance data |
McLure A, Mayfield HJ, Cadavid Restrepo A, Lau C, McPherson B, Rigby L, Graves P, Thomsen R, Viali S, Sartorius B |
https://doi.org/10.36334/modsim2025.H04.mclure |
https://mssanz.org.au/modsim2025/files/H04.mclure.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
L |
| Mayfield HJ |
Geostatistical modelling of Lymphatic Filariasis in Samoa using integrated human and mosquito surveillance data |
McLure A, Mayfield HJ, Cadavid Restrepo A, Lau C, McPherson B, Rigby L, Graves P, Thomsen R, Viali S, Sartorius B |
https://doi.org/10.36334/modsim2025.H04.mclure |
https://mssanz.org.au/modsim2025/files/H04.mclure.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
M |
| McLure A |
Geostatistical modelling of Lymphatic Filariasis in Samoa using integrated human and mosquito surveillance data |
McLure A, Mayfield HJ, Cadavid Restrepo A, Lau C, McPherson B, Rigby L, Graves P, Thomsen R, Viali S, Sartorius B |
https://doi.org/10.36334/modsim2025.H04.mclure |
https://mssanz.org.au/modsim2025/files/H04.mclure.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
M |
| McPherson B |
Geostatistical modelling of Lymphatic Filariasis in Samoa using integrated human and mosquito surveillance data |
McLure A, Mayfield HJ, Cadavid Restrepo A, Lau C, McPherson B, Rigby L, Graves P, Thomsen R, Viali S, Sartorius B |
https://doi.org/10.36334/modsim2025.H04.mclure |
https://mssanz.org.au/modsim2025/files/H04.mclure.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
M |
| Rigby L |
Geostatistical modelling of Lymphatic Filariasis in Samoa using integrated human and mosquito surveillance data |
McLure A, Mayfield HJ, Cadavid Restrepo A, Lau C, McPherson B, Rigby L, Graves P, Thomsen R, Viali S, Sartorius B |
https://doi.org/10.36334/modsim2025.H04.mclure |
https://mssanz.org.au/modsim2025/files/H04.mclure.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
R |
| Sartorius B |
Geostatistical modelling of Lymphatic Filariasis in Samoa using integrated human and mosquito surveillance data |
McLure A, Mayfield HJ, Cadavid Restrepo A, Lau C, McPherson B, Rigby L, Graves P, Thomsen R, Viali S, Sartorius B |
https://doi.org/10.36334/modsim2025.H04.mclure |
https://mssanz.org.au/modsim2025/files/H04.mclure.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
S |
| Thomsen R |
Geostatistical modelling of Lymphatic Filariasis in Samoa using integrated human and mosquito surveillance data |
McLure A, Mayfield HJ, Cadavid Restrepo A, Lau C, McPherson B, Rigby L, Graves P, Thomsen R, Viali S, Sartorius B |
https://doi.org/10.36334/modsim2025.H04.mclure |
https://mssanz.org.au/modsim2025/files/H04.mclure.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
T |
| Viali S |
Geostatistical modelling of Lymphatic Filariasis in Samoa using integrated human and mosquito surveillance data |
McLure A, Mayfield HJ, Cadavid Restrepo A, Lau C, McPherson B, Rigby L, Graves P, Thomsen R, Viali S, Sartorius B |
https://doi.org/10.36334/modsim2025.H04.mclure |
https://mssanz.org.au/modsim2025/files/H04.mclure.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
V |
| Ma Y (Yizhe) |
Global ecosystems reveal divergent evapotranspiration response patterns to drought stress |
Ma Y, Zhang Y |
https://doi.org/10.36334/modsim2025.K03.ma |
https://mssanz.org.au/modsim2025/files/K03.ma.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
M |
| Zhang Y (Yongqiang) |
Global ecosystems reveal divergent evapotranspiration response patterns to drought stress |
Ma Y, Zhang Y |
https://doi.org/10.36334/modsim2025.K03.ma |
https://mssanz.org.au/modsim2025/files/K03.ma.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
Z |
| Jia J |
Global lake primary productivity and carbon source-sink processes and their impact mechanisms |
Jia J |
https://doi.org/10.36334/modsim2025.K08.jia |
https://mssanz.org.au/modsim2025/files/K08.jia.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
J |
| Harrison MT |
Global sensitivity analysis and parameter optimisation of APSIM Next Generation |
Liu K, Harrison MT |
https://doi.org/10.36334/modsim2025.B07.liu |
https://mssanz.org.au/modsim2025/files/B07.liu.pdf |
B |
Biological systems |
B7 |
Optimising farming systems to improve climate resilience and sustainability under water-constraint environments |
H |
| Liu K |
Global sensitivity analysis and parameter optimisation of APSIM Next Generation |
Liu K, Harrison MT |
https://doi.org/10.36334/modsim2025.B07.liu |
https://mssanz.org.au/modsim2025/files/B07.liu.pdf |
B |
Biological systems |
B7 |
Optimising farming systems to improve climate resilience and sustainability under water-constraint environments |
L |
| Dougherty B |
GrowPF – A new model for tracking growth and body composition in ruminants (STREAM B KEYNOTE) |
Dougherty B, Western A, Seed A |
https://doi.org/10.36334/modsim2025.B04.dougherty |
https://mssanz.org.au/modsim2025/files/B04.dougherty.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
D |
| Seed A |
GrowPF – A new model for tracking growth and body composition in ruminants (STREAM B KEYNOTE) |
Dougherty B, Western A, Seed A |
https://doi.org/10.36334/modsim2025.B04.dougherty |
https://mssanz.org.au/modsim2025/files/B04.dougherty.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
S |
| Western A |
GrowPF – A new model for tracking growth and body composition in ruminants (STREAM B KEYNOTE) |
Dougherty B, Western A, Seed A |
https://doi.org/10.36334/modsim2025.B04.dougherty |
https://mssanz.org.au/modsim2025/files/B04.dougherty.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
W |
| Adarsh S |
Harnessing quantum variational circuits for enhanced streamflow forecasting in the Greater Pamba River Basin, India |
Nair GR, Adarsh S |
https://doi.org/10.36334/modsim2025.J06.arathynair |
https://mssanz.org.au/modsim2025/files/J06.arathynair.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
A |
| Nair GR |
Harnessing quantum variational circuits for enhanced streamflow forecasting in the Greater Pamba River Basin, India |
Nair GR, Adarsh S |
https://doi.org/10.36334/modsim2025.J06.arathynair |
https://mssanz.org.au/modsim2025/files/J06.arathynair.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
N |
| Coleman RA |
Harnessing the strengths of machine learning and geostatistics to improve streamflow prediction in ungauged basins; the best of both world |
Grey V, Fletcher TD, Smith-Miles K, Hatt BE, Coleman RA |
https://doi.org/10.36334/modsim2025.J05.grey |
https://mssanz.org.au/modsim2025/files/J05.grey.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
C |
| Fletcher TD |
Harnessing the strengths of machine learning and geostatistics to improve streamflow prediction in ungauged basins; the best of both world |
Grey V, Fletcher TD, Smith-Miles K, Hatt BE, Coleman RA |
https://doi.org/10.36334/modsim2025.J05.grey |
https://mssanz.org.au/modsim2025/files/J05.grey.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
F |
| Grey V |
Harnessing the strengths of machine learning and geostatistics to improve streamflow prediction in ungauged basins; the best of both world |
Grey V, Fletcher TD, Smith-Miles K, Hatt BE, Coleman RA |
https://doi.org/10.36334/modsim2025.J05.grey |
https://mssanz.org.au/modsim2025/files/J05.grey.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
G |
| Hatt BE |
Harnessing the strengths of machine learning and geostatistics to improve streamflow prediction in ungauged basins; the best of both world |
Grey V, Fletcher TD, Smith-Miles K, Hatt BE, Coleman RA |
https://doi.org/10.36334/modsim2025.J05.grey |
https://mssanz.org.au/modsim2025/files/J05.grey.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
H |
| Smith-Miles K |
Harnessing the strengths of machine learning and geostatistics to improve streamflow prediction in ungauged basins; the best of both world |
Grey V, Fletcher TD, Smith-Miles K, Hatt BE, Coleman RA |
https://doi.org/10.36334/modsim2025.J05.grey |
https://mssanz.org.au/modsim2025/files/J05.grey.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
S |
| Chapman SC |
Hierarchical ODE models for heading date estimation in wheat |
Fernandez JA, Wang Z, Chapman SC |
https://doi.org/10.36334/modsim2025.B06.fernandez |
https://mssanz.org.au/modsim2025/files/B06.fernandez.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
C |
| Fernandez JA |
Hierarchical ODE models for heading date estimation in wheat |
Fernandez JA, Wang Z, Chapman SC |
https://doi.org/10.36334/modsim2025.B06.fernandez |
https://mssanz.org.au/modsim2025/files/B06.fernandez.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
F |
| Wang Z (Zijian) |
Hierarchical ODE models for heading date estimation in wheat |
Fernandez JA, Wang Z, Chapman SC |
https://doi.org/10.36334/modsim2025.B06.fernandez |
https://mssanz.org.au/modsim2025/files/B06.fernandez.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
W |
| Box P |
High resolution mapping of buffelgrass using dense time series of imagery and open source data |
Box P, Lieper I, Nano C, Cobban D, Brim‑Box J |
https://doi.org/10.36334/modsim2025.F01.box |
https://mssanz.org.au/modsim2025/files/F01.box.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
B |
| Brim‑Box J |
High resolution mapping of buffelgrass using dense time series of imagery and open source data |
Box P, Lieper I, Nano C, Cobban D, Brim‑Box J |
https://doi.org/10.36334/modsim2025.F01.box |
https://mssanz.org.au/modsim2025/files/F01.box.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
B |
| Cobban D |
High resolution mapping of buffelgrass using dense time series of imagery and open source data |
Box P, Lieper I, Nano C, Cobban D, Brim‑Box J |
https://doi.org/10.36334/modsim2025.F01.box |
https://mssanz.org.au/modsim2025/files/F01.box.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
C |
| Lieper I |
High resolution mapping of buffelgrass using dense time series of imagery and open source data |
Box P, Lieper I, Nano C, Cobban D, Brim‑Box J |
https://doi.org/10.36334/modsim2025.F01.box |
https://mssanz.org.au/modsim2025/files/F01.box.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
L |
| Nano C |
High resolution mapping of buffelgrass using dense time series of imagery and open source data |
Box P, Lieper I, Nano C, Cobban D, Brim‑Box J |
https://doi.org/10.36334/modsim2025.F01.box |
https://mssanz.org.au/modsim2025/files/F01.box.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
N |
| Clark S |
High-fidelity emulation of a groundwater simulator using a deep LSTM neural network architecture |
Pagendam D, Siade A, Clark S, Dabrowski J, Li Z, Janardhanan S |
https://doi.org/10.36334/modsim2025.C06.pagendam |
https://mssanz.org.au/modsim2025/files/C06.pagendam.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
C |
| Dabrowski J |
High-fidelity emulation of a groundwater simulator using a deep LSTM neural network architecture |
Pagendam D, Siade A, Clark S, Dabrowski J, Li Z, Janardhanan S |
https://doi.org/10.36334/modsim2025.C06.pagendam |
https://mssanz.org.au/modsim2025/files/C06.pagendam.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
D |
| Janardhanan S |
High-fidelity emulation of a groundwater simulator using a deep LSTM neural network architecture |
Pagendam D, Siade A, Clark S, Dabrowski J, Li Z, Janardhanan S |
https://doi.org/10.36334/modsim2025.C06.pagendam |
https://mssanz.org.au/modsim2025/files/C06.pagendam.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
J |
| Li Z (Zhibin) |
High-fidelity emulation of a groundwater simulator using a deep LSTM neural network architecture |
Pagendam D, Siade A, Clark S, Dabrowski J, Li Z, Janardhanan S |
https://doi.org/10.36334/modsim2025.C06.pagendam |
https://mssanz.org.au/modsim2025/files/C06.pagendam.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
L |
| Pagendam D |
High-fidelity emulation of a groundwater simulator using a deep LSTM neural network architecture |
Pagendam D, Siade A, Clark S, Dabrowski J, Li Z, Janardhanan S |
https://doi.org/10.36334/modsim2025.C06.pagendam |
https://mssanz.org.au/modsim2025/files/C06.pagendam.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
P |
| Siade A |
High-fidelity emulation of a groundwater simulator using a deep LSTM neural network architecture |
Pagendam D, Siade A, Clark S, Dabrowski J, Li Z, Janardhanan S |
https://doi.org/10.36334/modsim2025.C06.pagendam |
https://mssanz.org.au/modsim2025/files/C06.pagendam.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
S |
| Condie S |
High-resolution climate projections reveal future bleaching risks in the Great Barrier Reef |
Cyriac A, Sun C, Taylor J, Matear R, Condie S, Reddy PJ, Liu T |
https://doi.org/10.36334/modsim2025.F09.cyriac |
https://mssanz.org.au/modsim2025/files/F09.cyriac.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
C |
| Cyriac A |
High-resolution climate projections reveal future bleaching risks in the Great Barrier Reef |
Cyriac A, Sun C, Taylor J, Matear R, Condie S, Reddy PJ, Liu T |
https://doi.org/10.36334/modsim2025.F09.cyriac |
https://mssanz.org.au/modsim2025/files/F09.cyriac.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
C |
| Liu T |
High-resolution climate projections reveal future bleaching risks in the Great Barrier Reef |
Cyriac A, Sun C, Taylor J, Matear R, Condie S, Reddy PJ, Liu T |
https://doi.org/10.36334/modsim2025.F09.cyriac |
https://mssanz.org.au/modsim2025/files/F09.cyriac.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
L |
| Matear R |
High-resolution climate projections reveal future bleaching risks in the Great Barrier Reef |
Cyriac A, Sun C, Taylor J, Matear R, Condie S, Reddy PJ, Liu T |
https://doi.org/10.36334/modsim2025.F09.cyriac |
https://mssanz.org.au/modsim2025/files/F09.cyriac.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
M |
| Reddy PJ |
High-resolution climate projections reveal future bleaching risks in the Great Barrier Reef |
Cyriac A, Sun C, Taylor J, Matear R, Condie S, Reddy PJ, Liu T |
https://doi.org/10.36334/modsim2025.F09.cyriac |
https://mssanz.org.au/modsim2025/files/F09.cyriac.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
R |
| Sun C |
High-resolution climate projections reveal future bleaching risks in the Great Barrier Reef |
Cyriac A, Sun C, Taylor J, Matear R, Condie S, Reddy PJ, Liu T |
https://doi.org/10.36334/modsim2025.F09.cyriac |
https://mssanz.org.au/modsim2025/files/F09.cyriac.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
S |
| Taylor J |
High-resolution climate projections reveal future bleaching risks in the Great Barrier Reef |
Cyriac A, Sun C, Taylor J, Matear R, Condie S, Reddy PJ, Liu T |
https://doi.org/10.36334/modsim2025.F09.cyriac |
https://mssanz.org.au/modsim2025/files/F09.cyriac.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
T |
| Sowden M |
High-resolution landscape fire monitoring: satellite-guided reconstruction of ground-level air pollutants at ten minute and 500 m scale |
Sowden M |
https://doi.org/10.36334/modsim2025.G07.sowden |
https://mssanz.org.au/modsim2025/files/G07.sowden.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
S |
| Ayaz NU |
High-resolution near-surface soil moisture mapping for precision irrigation using a UAV |
Ayaz NU, Walker JP, Wu X, Hills J, Ye N, Brakhasi F, Popstefanija I |
https://doi.org/10.36334/modsim2025.J09.ayaz |
https://mssanz.org.au/modsim2025/files/J09.ayaz.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
A |
| Brakhasi F |
High-resolution near-surface soil moisture mapping for precision irrigation using a UAV |
Ayaz NU, Walker JP, Wu X, Hills J, Ye N, Brakhasi F, Popstefanija I |
https://doi.org/10.36334/modsim2025.J09.ayaz |
https://mssanz.org.au/modsim2025/files/J09.ayaz.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
B |
| Hills J |
High-resolution near-surface soil moisture mapping for precision irrigation using a UAV |
Ayaz NU, Walker JP, Wu X, Hills J, Ye N, Brakhasi F, Popstefanija I |
https://doi.org/10.36334/modsim2025.J09.ayaz |
https://mssanz.org.au/modsim2025/files/J09.ayaz.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
H |
| Popstefanija I |
High-resolution near-surface soil moisture mapping for precision irrigation using a UAV |
Ayaz NU, Walker JP, Wu X, Hills J, Ye N, Brakhasi F, Popstefanija I |
https://doi.org/10.36334/modsim2025.J09.ayaz |
https://mssanz.org.au/modsim2025/files/J09.ayaz.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
P |
| Walker JP |
High-resolution near-surface soil moisture mapping for precision irrigation using a UAV |
Ayaz NU, Walker JP, Wu X, Hills J, Ye N, Brakhasi F, Popstefanija I |
https://doi.org/10.36334/modsim2025.J09.ayaz |
https://mssanz.org.au/modsim2025/files/J09.ayaz.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
W |
| Wu X |
High-resolution near-surface soil moisture mapping for precision irrigation using a UAV |
Ayaz NU, Walker JP, Wu X, Hills J, Ye N, Brakhasi F, Popstefanija I |
https://doi.org/10.36334/modsim2025.J09.ayaz |
https://mssanz.org.au/modsim2025/files/J09.ayaz.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
W |
| Ye N |
High-resolution near-surface soil moisture mapping for precision irrigation using a UAV |
Ayaz NU, Walker JP, Wu X, Hills J, Ye N, Brakhasi F, Popstefanija I |
https://doi.org/10.36334/modsim2025.J09.ayaz |
https://mssanz.org.au/modsim2025/files/J09.ayaz.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
Y |
| Bolger M |
Holistic naval ship design in CSIRO Workspace |
Rose D, Hield P, Bolger M, Hetherton L, Thomas D, Watkins D |
https://doi.org/10.36334/modsim2025.C01.rose |
https://mssanz.org.au/modsim2025/files/C01.rose.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
B |
| Hetherton L |
Holistic naval ship design in CSIRO Workspace |
Rose D, Hield P, Bolger M, Hetherton L, Thomas D, Watkins D |
https://doi.org/10.36334/modsim2025.C01.rose |
https://mssanz.org.au/modsim2025/files/C01.rose.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
H |
| Hield P |
Holistic naval ship design in CSIRO Workspace |
Rose D, Hield P, Bolger M, Hetherton L, Thomas D, Watkins D |
https://doi.org/10.36334/modsim2025.C01.rose |
https://mssanz.org.au/modsim2025/files/C01.rose.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
H |
| Rose D |
Holistic naval ship design in CSIRO Workspace |
Rose D, Hield P, Bolger M, Hetherton L, Thomas D, Watkins D |
https://doi.org/10.36334/modsim2025.C01.rose |
https://mssanz.org.au/modsim2025/files/C01.rose.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
R |
| Thomas D (David) |
Holistic naval ship design in CSIRO Workspace |
Rose D, Hield P, Bolger M, Hetherton L, Thomas D, Watkins D |
https://doi.org/10.36334/modsim2025.C01.rose |
https://mssanz.org.au/modsim2025/files/C01.rose.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
T |
| Watkins D |
Holistic naval ship design in CSIRO Workspace |
Rose D, Hield P, Bolger M, Hetherton L, Thomas D, Watkins D |
https://doi.org/10.36334/modsim2025.C01.rose |
https://mssanz.org.au/modsim2025/files/C01.rose.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
W |
| Biggs J |
How and for how long should you “spin-up” soil C sub-pools in an APSIM simulation? |
Pasley H, Biggs J, Huth N, Verburg K |
https://doi.org/10.36334/modsim2025.B03.pasley |
https://mssanz.org.au/modsim2025/files/B03.pasley.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
B |
| Huth N |
How and for how long should you “spin-up” soil C sub-pools in an APSIM simulation? |
Pasley H, Biggs J, Huth N, Verburg K |
https://doi.org/10.36334/modsim2025.B03.pasley |
https://mssanz.org.au/modsim2025/files/B03.pasley.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
H |
| Pasley H |
How and for how long should you “spin-up” soil C sub-pools in an APSIM simulation? |
Pasley H, Biggs J, Huth N, Verburg K |
https://doi.org/10.36334/modsim2025.B03.pasley |
https://mssanz.org.au/modsim2025/files/B03.pasley.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
P |
| Verburg K |
How and for how long should you “spin-up” soil C sub-pools in an APSIM simulation? |
Pasley H, Biggs J, Huth N, Verburg K |
https://doi.org/10.36334/modsim2025.B03.pasley |
https://mssanz.org.au/modsim2025/files/B03.pasley.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
V |
| Boon C |
How does bathymetric resolution and mesh design influence estuarine flushing time estimates? |
Moravej M, Branson P, Hipsey M, Boon C, Raj David D, Singh A, Gibbes B |
https://doi.org/10.36334/modsim2025.L02.moravej |
https://mssanz.org.au/modsim2025/files/L02.moravej.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
B |
| Branson P |
How does bathymetric resolution and mesh design influence estuarine flushing time estimates? |
Moravej M, Branson P, Hipsey M, Boon C, Raj David D, Singh A, Gibbes B |
https://doi.org/10.36334/modsim2025.L02.moravej |
https://mssanz.org.au/modsim2025/files/L02.moravej.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
B |
| Gibbes B |
How does bathymetric resolution and mesh design influence estuarine flushing time estimates? |
Moravej M, Branson P, Hipsey M, Boon C, Raj David D, Singh A, Gibbes B |
https://doi.org/10.36334/modsim2025.L02.moravej |
https://mssanz.org.au/modsim2025/files/L02.moravej.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
G |
| Hipsey M |
How does bathymetric resolution and mesh design influence estuarine flushing time estimates? |
Moravej M, Branson P, Hipsey M, Boon C, Raj David D, Singh A, Gibbes B |
https://doi.org/10.36334/modsim2025.L02.moravej |
https://mssanz.org.au/modsim2025/files/L02.moravej.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
H |
| Moravej M |
How does bathymetric resolution and mesh design influence estuarine flushing time estimates? |
Moravej M, Branson P, Hipsey M, Boon C, Raj David D, Singh A, Gibbes B |
https://doi.org/10.36334/modsim2025.L02.moravej |
https://mssanz.org.au/modsim2025/files/L02.moravej.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
M |
| Raj David D |
How does bathymetric resolution and mesh design influence estuarine flushing time estimates? |
Moravej M, Branson P, Hipsey M, Boon C, Raj David D, Singh A, Gibbes B |
https://doi.org/10.36334/modsim2025.L02.moravej |
https://mssanz.org.au/modsim2025/files/L02.moravej.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
R |
| Singh A |
How does bathymetric resolution and mesh design influence estuarine flushing time estimates? |
Moravej M, Branson P, Hipsey M, Boon C, Raj David D, Singh A, Gibbes B |
https://doi.org/10.36334/modsim2025.L02.moravej |
https://mssanz.org.au/modsim2025/files/L02.moravej.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
S |
| Fowler K |
How fast can a MARRMoT run? Improving runtimes for the Modular Assessment of Rainfall-Runoff Toolbox (MARRMoT) |
Fowler K, Mandy D, Zhang Z, Zhou J, Lerat J, Kavetski D, Knoben W |
https://doi.org/10.36334/modsim2025.A02.fowler |
https://mssanz.org.au/modsim2025/files/A02.fowler.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
F |
| Kavetski D |
How fast can a MARRMoT run? Improving runtimes for the Modular Assessment of Rainfall-Runoff Toolbox (MARRMoT) |
Fowler K, Mandy D, Zhang Z, Zhou J, Lerat J, Kavetski D, Knoben W |
https://doi.org/10.36334/modsim2025.A02.fowler |
https://mssanz.org.au/modsim2025/files/A02.fowler.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
K |
| Knoben W |
How fast can a MARRMoT run? Improving runtimes for the Modular Assessment of Rainfall-Runoff Toolbox (MARRMoT) |
Fowler K, Mandy D, Zhang Z, Zhou J, Lerat J, Kavetski D, Knoben W |
https://doi.org/10.36334/modsim2025.A02.fowler |
https://mssanz.org.au/modsim2025/files/A02.fowler.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
K |
| Lerat J |
How fast can a MARRMoT run? Improving runtimes for the Modular Assessment of Rainfall-Runoff Toolbox (MARRMoT) |
Fowler K, Mandy D, Zhang Z, Zhou J, Lerat J, Kavetski D, Knoben W |
https://doi.org/10.36334/modsim2025.A02.fowler |
https://mssanz.org.au/modsim2025/files/A02.fowler.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
L |
| Mandy D |
How fast can a MARRMoT run? Improving runtimes for the Modular Assessment of Rainfall-Runoff Toolbox (MARRMoT) |
Fowler K, Mandy D, Zhang Z, Zhou J, Lerat J, Kavetski D, Knoben W |
https://doi.org/10.36334/modsim2025.A02.fowler |
https://mssanz.org.au/modsim2025/files/A02.fowler.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
M |
| Zhang Z (Ziqi) |
How fast can a MARRMoT run? Improving runtimes for the Modular Assessment of Rainfall-Runoff Toolbox (MARRMoT) |
Fowler K, Mandy D, Zhang Z, Zhou J, Lerat J, Kavetski D, Knoben W |
https://doi.org/10.36334/modsim2025.A02.fowler |
https://mssanz.org.au/modsim2025/files/A02.fowler.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
Z |
| Zhou J |
How fast can a MARRMoT run? Improving runtimes for the Modular Assessment of Rainfall-Runoff Toolbox (MARRMoT) |
Fowler K, Mandy D, Zhang Z, Zhou J, Lerat J, Kavetski D, Knoben W |
https://doi.org/10.36334/modsim2025.A02.fowler |
https://mssanz.org.au/modsim2025/files/A02.fowler.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
Z |
| Batelaan O |
How indices contribute to global water scarcity estimation uncertainty |
Gray C, Maier H, Westra S, Leonard M, Batelaan O |
https://doi.org/10.36334/modsim2025.J08.gray |
https://mssanz.org.au/modsim2025/files/J08.gray.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
B |
| Gray C |
How indices contribute to global water scarcity estimation uncertainty |
Gray C, Maier H, Westra S, Leonard M, Batelaan O |
https://doi.org/10.36334/modsim2025.J08.gray |
https://mssanz.org.au/modsim2025/files/J08.gray.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
G |
| Leonard M (Michael) |
How indices contribute to global water scarcity estimation uncertainty |
Gray C, Maier H, Westra S, Leonard M, Batelaan O |
https://doi.org/10.36334/modsim2025.J08.gray |
https://mssanz.org.au/modsim2025/files/J08.gray.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
L |
| Maier HR |
How indices contribute to global water scarcity estimation uncertainty |
Gray C, Maier H, Westra S, Leonard M, Batelaan O |
https://doi.org/10.36334/modsim2025.J08.gray |
https://mssanz.org.au/modsim2025/files/J08.gray.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
M |
| Westra S |
How indices contribute to global water scarcity estimation uncertainty |
Gray C, Maier H, Westra S, Leonard M, Batelaan O |
https://doi.org/10.36334/modsim2025.J08.gray |
https://mssanz.org.au/modsim2025/files/J08.gray.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
W |
| Bai Q |
How much data is enough? Evaluating training length in physics-informed LSTM for soil moisture |
Jiang C, Hardie M, Bai Q |
https://doi.org/10.36334/modsim2025.C07.jiang |
https://mssanz.org.au/modsim2025/files/C07.jiang.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
B |
| Hardie M |
How much data is enough? Evaluating training length in physics-informed LSTM for soil moisture |
Jiang C, Hardie M, Bai Q |
https://doi.org/10.36334/modsim2025.C07.jiang |
https://mssanz.org.au/modsim2025/files/C07.jiang.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
H |
| Jiang C |
How much data is enough? Evaluating training length in physics-informed LSTM for soil moisture |
Jiang C, Hardie M, Bai Q |
https://doi.org/10.36334/modsim2025.C07.jiang |
https://mssanz.org.au/modsim2025/files/C07.jiang.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
J |
| Gaydon DS |
How well does APSIM NG simulate wheat yields with gridded data? |
Richetti J, Lawes R A, Whan A, Gaydon D S, Thorburn P |
https://doi.org/10.36334/modsim2025.B02.richetti |
https://mssanz.org.au/modsim2025/files/B02.richetti.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
G |
| Lawes RA |
How well does APSIM NG simulate wheat yields with gridded data? |
Richetti J, Lawes R A, Whan A, Gaydon D S, Thorburn P |
https://doi.org/10.36334/modsim2025.B02.richetti |
https://mssanz.org.au/modsim2025/files/B02.richetti.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
L |
| Richetti J |
How well does APSIM NG simulate wheat yields with gridded data? |
Richetti J, Lawes R A, Whan A, Gaydon D S, Thorburn P |
https://doi.org/10.36334/modsim2025.B02.richetti |
https://mssanz.org.au/modsim2025/files/B02.richetti.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
R |
| Thorburn P |
How well does APSIM NG simulate wheat yields with gridded data? |
Richetti J, Lawes R A, Whan A, Gaydon D S, Thorburn P |
https://doi.org/10.36334/modsim2025.B02.richetti |
https://mssanz.org.au/modsim2025/files/B02.richetti.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
T |
| Whan A |
How well does APSIM NG simulate wheat yields with gridded data? |
Richetti J, Lawes R A, Whan A, Gaydon D S, Thorburn P |
https://doi.org/10.36334/modsim2025.B02.richetti |
https://mssanz.org.au/modsim2025/files/B02.richetti.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
W |
| Chimprang N |
Hybrid forecasting of crude oil prices using WT‑QPSO‑ANFIS |
Tansuchat R, Chimprang N |
https://doi.org/10.36334/modsim2025.D01.tansuchat |
https://mssanz.org.au/modsim2025/files/D01.tansuchat.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
C |
| Tansuchat R |
Hybrid forecasting of crude oil prices using WT‑QPSO‑ANFIS |
Tansuchat R, Chimprang N |
https://doi.org/10.36334/modsim2025.D01.tansuchat |
https://mssanz.org.au/modsim2025/files/D01.tansuchat.pdf |
D |
Economics and finance |
D1 |
Machine Learning Applications in Economics and Finance |
T |
| Hughes J |
Hydrodynamic modelling of floods and developing an emulator for long term inundation predictions |
Karim F, Hughes J, Kim S, Ticehurst C, Marvanek S, Petheram C |
https://doi.org/10.36334/modsim2025.G09.karim |
https://mssanz.org.au/modsim2025/files/G09.karim.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
H |
| Karim F |
Hydrodynamic modelling of floods and developing an emulator for long term inundation predictions |
Karim F, Hughes J, Kim S, Ticehurst C, Marvanek S, Petheram C |
https://doi.org/10.36334/modsim2025.G09.karim |
https://mssanz.org.au/modsim2025/files/G09.karim.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
K |
| Kim SSH |
Hydrodynamic modelling of floods and developing an emulator for long term inundation predictions |
Karim F, Hughes J, Kim S, Ticehurst C, Marvanek S, Petheram C |
https://doi.org/10.36334/modsim2025.G09.karim |
https://mssanz.org.au/modsim2025/files/G09.karim.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
K |
| Marvanek S |
Hydrodynamic modelling of floods and developing an emulator for long term inundation predictions |
Karim F, Hughes J, Kim S, Ticehurst C, Marvanek S, Petheram C |
https://doi.org/10.36334/modsim2025.G09.karim |
https://mssanz.org.au/modsim2025/files/G09.karim.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
M |
| Petheram C |
Hydrodynamic modelling of floods and developing an emulator for long term inundation predictions |
Karim F, Hughes J, Kim S, Ticehurst C, Marvanek S, Petheram C |
https://doi.org/10.36334/modsim2025.G09.karim |
https://mssanz.org.au/modsim2025/files/G09.karim.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
P |
| Ticehurst C |
Hydrodynamic modelling of floods and developing an emulator for long term inundation predictions |
Karim F, Hughes J, Kim S, Ticehurst C, Marvanek S, Petheram C |
https://doi.org/10.36334/modsim2025.G09.karim |
https://mssanz.org.au/modsim2025/files/G09.karim.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
T |
| Cinque K |
Hydrodynamic modelling of water quality impacts of petrol-powered botas on a drinking water reservoir |
Cinque K, Costello S |
https://doi.org/10.36334/modsim2025.L04.cinque |
https://mssanz.org.au/modsim2025/files/L04.cinque.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
C |
| Costello S |
Hydrodynamic modelling of water quality impacts of petrol-powered botas on a drinking water reservoir |
Cinque K, Costello S |
https://doi.org/10.36334/modsim2025.L04.cinque |
https://mssanz.org.au/modsim2025/files/L04.cinque.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
C |
| Horne A |
Hydro-economic modelling of climate change impacts on water allocations and markets |
John A, Horne A, Hughes N |
https://doi.org/10.36334/modsim2025.J02.john |
https://mssanz.org.au/modsim2025/files/J02.john.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
H |
| Hughes N |
Hydro-economic modelling of climate change impacts on water allocations and markets |
John A, Horne A, Hughes N |
https://doi.org/10.36334/modsim2025.J02.john |
https://mssanz.org.au/modsim2025/files/J02.john.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
H |
| John A |
Hydro-economic modelling of climate change impacts on water allocations and markets |
John A, Horne A, Hughes N |
https://doi.org/10.36334/modsim2025.J02.john |
https://mssanz.org.au/modsim2025/files/J02.john.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
J |
| Cook FJ |
Hydrologic response unit: The missing link in hydrology |
Cook FJ, Weber T, Filipovic V |
https://doi.org/10.36334/modsim2025.L04.cook |
https://mssanz.org.au/modsim2025/files/L04.cook.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
C |
| Filipovic V |
Hydrologic response unit: The missing link in hydrology |
Cook FJ, Weber T, Filipovic V |
https://doi.org/10.36334/modsim2025.L04.cook |
https://mssanz.org.au/modsim2025/files/L04.cook.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
F |
| Weber T |
Hydrologic response unit: The missing link in hydrology |
Cook FJ, Weber T, Filipovic V |
https://doi.org/10.36334/modsim2025.L04.cook |
https://mssanz.org.au/modsim2025/files/L04.cook.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
W |
| Hammad M |
Hydrological modelling under uncertainty: Can two-state residuals improve error representation? |
Hammad M, Mehrotra R, Sharma A |
https://doi.org/10.36334/modsim2025.K06.hammad |
https://mssanz.org.au/modsim2025/files/K06.hammad.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
H |
| Mehrotra R |
Hydrological modelling under uncertainty: Can two-state residuals improve error representation? |
Hammad M, Mehrotra R, Sharma A |
https://doi.org/10.36334/modsim2025.K06.hammad |
https://mssanz.org.au/modsim2025/files/K06.hammad.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
M |
| Sharma A |
Hydrological modelling under uncertainty: Can two-state residuals improve error representation? |
Hammad M, Mehrotra R, Sharma A |
https://doi.org/10.36334/modsim2025.K06.hammad |
https://mssanz.org.au/modsim2025/files/K06.hammad.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
S |
| Aramini D |
Hydrological non-stationarity in the northern Murray-Darling Basin |
Gardiya Weligamage H, Fowler K, Saft M, Beecham R, French N, Dutta D, Higgins P, Gan R, Simons M, Tang Y, Reagan‑Beasley D, Aramini D |
https://doi.org/10.36334/modsim2025.J01.gardiyaweligamage |
https://mssanz.org.au/modsim2025/files/J01.gardiyaweligamage.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
A |
| Beecham R |
Hydrological non-stationarity in the northern Murray-Darling Basin |
Gardiya Weligamage H, Fowler K, Saft M, Beecham R, French N, Dutta D, Higgins P, Gan R, Simons M, Tang Y, Reagan‑Beasley D, Aramini D |
https://doi.org/10.36334/modsim2025.J01.gardiyaweligamage |
https://mssanz.org.au/modsim2025/files/J01.gardiyaweligamage.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
B |
| Dutta D |
Hydrological non-stationarity in the northern Murray-Darling Basin |
Gardiya Weligamage H, Fowler K, Saft M, Beecham R, French N, Dutta D, Higgins P, Gan R, Simons M, Tang Y, Reagan‑Beasley D, Aramini D |
https://doi.org/10.36334/modsim2025.J01.gardiyaweligamage |
https://mssanz.org.au/modsim2025/files/J01.gardiyaweligamage.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
D |
| Fowler K |
Hydrological non-stationarity in the northern Murray-Darling Basin |
Gardiya Weligamage H, Fowler K, Saft M, Beecham R, French N, Dutta D, Higgins P, Gan R, Simons M, Tang Y, Reagan‑Beasley D, Aramini D |
https://doi.org/10.36334/modsim2025.J01.gardiyaweligamage |
https://mssanz.org.au/modsim2025/files/J01.gardiyaweligamage.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
F |
| French N |
Hydrological non-stationarity in the northern Murray-Darling Basin |
Gardiya Weligamage H, Fowler K, Saft M, Beecham R, French N, Dutta D, Higgins P, Gan R, Simons M, Tang Y, Reagan‑Beasley D, Aramini D |
https://doi.org/10.36334/modsim2025.J01.gardiyaweligamage |
https://mssanz.org.au/modsim2025/files/J01.gardiyaweligamage.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
F |
| Gan R |
Hydrological non-stationarity in the northern Murray-Darling Basin |
Gardiya Weligamage H, Fowler K, Saft M, Beecham R, French N, Dutta D, Higgins P, Gan R, Simons M, Tang Y, Reagan‑Beasley D, Aramini D |
https://doi.org/10.36334/modsim2025.J01.gardiyaweligamage |
https://mssanz.org.au/modsim2025/files/J01.gardiyaweligamage.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
G |
| Gardiya Weligamage H |
Hydrological non-stationarity in the northern Murray-Darling Basin |
Gardiya Weligamage H, Fowler K, Saft M, Beecham R, French N, Dutta D, Higgins P, Gan R, Simons M, Tang Y, Reagan‑Beasley D, Aramini D |
https://doi.org/10.36334/modsim2025.J01.gardiyaweligamage |
https://mssanz.org.au/modsim2025/files/J01.gardiyaweligamage.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
G |
| Higgins P |
Hydrological non-stationarity in the northern Murray-Darling Basin |
Gardiya Weligamage H, Fowler K, Saft M, Beecham R, French N, Dutta D, Higgins P, Gan R, Simons M, Tang Y, Reagan‑Beasley D, Aramini D |
https://doi.org/10.36334/modsim2025.J01.gardiyaweligamage |
https://mssanz.org.au/modsim2025/files/J01.gardiyaweligamage.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
H |
| Reagan‑Beasley D |
Hydrological non-stationarity in the northern Murray-Darling Basin |
Gardiya Weligamage H, Fowler K, Saft M, Beecham R, French N, Dutta D, Higgins P, Gan R, Simons M, Tang Y, Reagan‑Beasley D, Aramini D |
https://doi.org/10.36334/modsim2025.J01.gardiyaweligamage |
https://mssanz.org.au/modsim2025/files/J01.gardiyaweligamage.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
R |
| Saft M |
Hydrological non-stationarity in the northern Murray-Darling Basin |
Gardiya Weligamage H, Fowler K, Saft M, Beecham R, French N, Dutta D, Higgins P, Gan R, Simons M, Tang Y, Reagan‑Beasley D, Aramini D |
https://doi.org/10.36334/modsim2025.J01.gardiyaweligamage |
https://mssanz.org.au/modsim2025/files/J01.gardiyaweligamage.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
S |
| Simons M |
Hydrological non-stationarity in the northern Murray-Darling Basin |
Gardiya Weligamage H, Fowler K, Saft M, Beecham R, French N, Dutta D, Higgins P, Gan R, Simons M, Tang Y, Reagan‑Beasley D, Aramini D |
https://doi.org/10.36334/modsim2025.J01.gardiyaweligamage |
https://mssanz.org.au/modsim2025/files/J01.gardiyaweligamage.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
S |
| Tang Y |
Hydrological non-stationarity in the northern Murray-Darling Basin |
Gardiya Weligamage H, Fowler K, Saft M, Beecham R, French N, Dutta D, Higgins P, Gan R, Simons M, Tang Y, Reagan‑Beasley D, Aramini D |
https://doi.org/10.36334/modsim2025.J01.gardiyaweligamage |
https://mssanz.org.au/modsim2025/files/J01.gardiyaweligamage.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
T |
| Kanij T |
Hyperspectral image analysis for environmental monitoring: advances of the last decade |
Tasnim A, Sayeed A, Kanij T |
https://doi.org/10.36334/modsim2025.J03.tasnim |
https://mssanz.org.au/modsim2025/files/J03.tasnim.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
K |
| Sayeed A |
Hyperspectral image analysis for environmental monitoring: advances of the last decade |
Tasnim A, Sayeed A, Kanij T |
https://doi.org/10.36334/modsim2025.J03.tasnim |
https://mssanz.org.au/modsim2025/files/J03.tasnim.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
S |
| Tasnim A |
Hyperspectral image analysis for environmental monitoring: advances of the last decade |
Tasnim A, Sayeed A, Kanij T |
https://doi.org/10.36334/modsim2025.J03.tasnim |
https://mssanz.org.au/modsim2025/files/J03.tasnim.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
T |
| Knowling MJ |
Identifying ‘macro’ drivers of cropping system performance |
Luo L, Knowling MJ |
https://doi.org/10.36334/modsim2025.B05.luo |
https://mssanz.org.au/modsim2025/files/B05.luo.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
K |
| Luo L |
Identifying ‘macro’ drivers of cropping system performance |
Luo L, Knowling MJ |
https://doi.org/10.36334/modsim2025.B05.luo |
https://mssanz.org.au/modsim2025/files/B05.luo.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
L |
| Box P |
Identifying and mapping groundwater dependent ecosystems from phenological behaviour in time series of satellite imagery in the Northern Territory |
Job M, Box P |
https://doi.org/10.36334/modsim2025.F08.job |
https://mssanz.org.au/modsim2025/files/F08.job.pdf |
F |
Environment and ecology |
F8 |
GIS and environmental modelling |
B |
| Job M |
Identifying and mapping groundwater dependent ecosystems from phenological behaviour in time series of satellite imagery in the Northern Territory |
Job M, Box P |
https://doi.org/10.36334/modsim2025.F08.job |
https://mssanz.org.au/modsim2025/files/F08.job.pdf |
F |
Environment and ecology |
F8 |
GIS and environmental modelling |
J |
| Guillaume JHA |
Identifying intervention options that promote coral reef resilience under climate uncertainty |
Sanches VH, Iwanaga T, Ribeiro de Almeida P, Mathews SA, Guillaume JHA, Lade SJ |
https://doi.org/10.36334/modsim2025.F05.hiratasanches |
https://mssanz.org.au/modsim2025/files/F05.hiratasanches.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
G |
| Iwanaga T |
Identifying intervention options that promote coral reef resilience under climate uncertainty |
Sanches VH, Iwanaga T, Ribeiro de Almeida P, Mathews SA, Guillaume JHA, Lade SJ |
https://doi.org/10.36334/modsim2025.F05.hiratasanches |
https://mssanz.org.au/modsim2025/files/F05.hiratasanches.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
I |
| Lade SJ |
Identifying intervention options that promote coral reef resilience under climate uncertainty |
Sanches VH, Iwanaga T, Ribeiro de Almeida P, Mathews SA, Guillaume JHA, Lade SJ |
https://doi.org/10.36334/modsim2025.F05.hiratasanches |
https://mssanz.org.au/modsim2025/files/F05.hiratasanches.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
L |
| Mathews SA |
Identifying intervention options that promote coral reef resilience under climate uncertainty |
Sanches VH, Iwanaga T, Ribeiro de Almeida P, Mathews SA, Guillaume JHA, Lade SJ |
https://doi.org/10.36334/modsim2025.F05.hiratasanches |
https://mssanz.org.au/modsim2025/files/F05.hiratasanches.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
M |
| Ribeiro de Almeida P |
Identifying intervention options that promote coral reef resilience under climate uncertainty |
Sanches VH, Iwanaga T, Ribeiro de Almeida P, Mathews SA, Guillaume JHA, Lade SJ |
https://doi.org/10.36334/modsim2025.F05.hiratasanches |
https://mssanz.org.au/modsim2025/files/F05.hiratasanches.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
R |
| Sanches VH |
Identifying intervention options that promote coral reef resilience under climate uncertainty |
Sanches VH, Iwanaga T, Ribeiro de Almeida P, Mathews SA, Guillaume JHA, Lade SJ |
https://doi.org/10.36334/modsim2025.F05.hiratasanches |
https://mssanz.org.au/modsim2025/files/F05.hiratasanches.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
S |
| Hutchinson MF |
Impact of topographic data resolution on spatial interpolation of hourly rainfall splines for flood inundation modelling (INVITED SPEAKER) |
Nguyen C, Vaze J, Mateo CMR, Teng J, Hutchinson MF |
https://doi.org/10.36334/modsim2025.G09.nguyen |
https://mssanz.org.au/modsim2025/files/G09.nguyen.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
H |
| Mateo CMR |
Impact of topographic data resolution on spatial interpolation of hourly rainfall splines for flood inundation modelling (INVITED SPEAKER) |
Nguyen C, Vaze J, Mateo CMR, Teng J, Hutchinson MF |
https://doi.org/10.36334/modsim2025.G09.nguyen |
https://mssanz.org.au/modsim2025/files/G09.nguyen.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
M |
| Nguyen C |
Impact of topographic data resolution on spatial interpolation of hourly rainfall splines for flood inundation modelling (INVITED SPEAKER) |
Nguyen C, Vaze J, Mateo CMR, Teng J, Hutchinson MF |
https://doi.org/10.36334/modsim2025.G09.nguyen |
https://mssanz.org.au/modsim2025/files/G09.nguyen.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
N |
| Teng J |
Impact of topographic data resolution on spatial interpolation of hourly rainfall splines for flood inundation modelling (INVITED SPEAKER) |
Nguyen C, Vaze J, Mateo CMR, Teng J, Hutchinson MF |
https://doi.org/10.36334/modsim2025.G09.nguyen |
https://mssanz.org.au/modsim2025/files/G09.nguyen.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
T |
| Vaze J |
Impact of topographic data resolution on spatial interpolation of hourly rainfall splines for flood inundation modelling (INVITED SPEAKER) |
Nguyen C, Vaze J, Mateo CMR, Teng J, Hutchinson MF |
https://doi.org/10.36334/modsim2025.G09.nguyen |
https://mssanz.org.au/modsim2025/files/G09.nguyen.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
V |
| Pepler A |
Impactful wet/windy extremes in Australia (INVITED SPEAKER) |
Pepler A |
https://doi.org/10.36334/modsim2025.K07.pepler |
https://mssanz.org.au/modsim2025/files/K07.pepler.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
P |
| Liu D (Dedi) |
Impacts of inter-basin water diversion projects on feedback loops of water supply-hydropower generation-environment conservation nexus |
Wang J, Liu D |
https://doi.org/10.36334/modsim2025.A02.wang |
https://mssanz.org.au/modsim2025/files/A02.wang.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
L |
| Wang J |
Impacts of inter-basin water diversion projects on feedback loops of water supply-hydropower generation-environment conservation nexus |
Wang J, Liu D |
https://doi.org/10.36334/modsim2025.A02.wang |
https://mssanz.org.au/modsim2025/files/A02.wang.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
W |
| Brown A (Andrew) |
Implementing dead storage representation in the Barwon-Darling Source model to improve low flow and cease to flow behaviour |
Regan-Beasley D, Podger S, Teh S, Brown A |
https://doi.org/10.36334/modsim2025.J02.reganbeasley |
https://mssanz.org.au/modsim2025/files/J02.reganbeasley.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
B |
| Podger S |
Implementing dead storage representation in the Barwon-Darling Source model to improve low flow and cease to flow behaviour |
Regan-Beasley D, Podger S, Teh S, Brown A |
https://doi.org/10.36334/modsim2025.J02.reganbeasley |
https://mssanz.org.au/modsim2025/files/J02.reganbeasley.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
P |
| Regan-Beasley D |
Implementing dead storage representation in the Barwon-Darling Source model to improve low flow and cease to flow behaviour |
Regan-Beasley D, Podger S, Teh S, Brown A |
https://doi.org/10.36334/modsim2025.J02.reganbeasley |
https://mssanz.org.au/modsim2025/files/J02.reganbeasley.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
R |
| Teh S |
Implementing dead storage representation in the Barwon-Darling Source model to improve low flow and cease to flow behaviour |
Regan-Beasley D, Podger S, Teh S, Brown A |
https://doi.org/10.36334/modsim2025.J02.reganbeasley |
https://mssanz.org.au/modsim2025/files/J02.reganbeasley.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
T |
| Akhtar K |
Importance of scientific rigour in validating machine learning models: The Google global flood model example |
Razavi S, Li K, Maier HR, Hrachowitz M, Nabavi E, Harvey N, Akhtar K, Unduche F |
https://doi.org/10.36334/modsim2025.C07.razavi |
https://mssanz.org.au/modsim2025/files/C07.razavi.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
A |
| Harvey N |
Importance of scientific rigour in validating machine learning models: The Google global flood model example |
Razavi S, Li K, Maier HR, Hrachowitz M, Nabavi E, Harvey N, Akhtar K, Unduche F |
https://doi.org/10.36334/modsim2025.C07.razavi |
https://mssanz.org.au/modsim2025/files/C07.razavi.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
H |
| Hrachowitz M |
Importance of scientific rigour in validating machine learning models: The Google global flood model example |
Razavi S, Li K, Maier HR, Hrachowitz M, Nabavi E, Harvey N, Akhtar K, Unduche F |
https://doi.org/10.36334/modsim2025.C07.razavi |
https://mssanz.org.au/modsim2025/files/C07.razavi.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
H |
| Li K |
Importance of scientific rigour in validating machine learning models: The Google global flood model example |
Razavi S, Li K, Maier HR, Hrachowitz M, Nabavi E, Harvey N, Akhtar K, Unduche F |
https://doi.org/10.36334/modsim2025.C07.razavi |
https://mssanz.org.au/modsim2025/files/C07.razavi.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
L |
| Maier HR |
Importance of scientific rigour in validating machine learning models: The Google global flood model example |
Razavi S, Li K, Maier HR, Hrachowitz M, Nabavi E, Harvey N, Akhtar K, Unduche F |
https://doi.org/10.36334/modsim2025.C07.razavi |
https://mssanz.org.au/modsim2025/files/C07.razavi.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
M |
| Nabavi E |
Importance of scientific rigour in validating machine learning models: The Google global flood model example |
Razavi S, Li K, Maier HR, Hrachowitz M, Nabavi E, Harvey N, Akhtar K, Unduche F |
https://doi.org/10.36334/modsim2025.C07.razavi |
https://mssanz.org.au/modsim2025/files/C07.razavi.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
N |
| Razavi S |
Importance of scientific rigour in validating machine learning models: The Google global flood model example |
Razavi S, Li K, Maier HR, Hrachowitz M, Nabavi E, Harvey N, Akhtar K, Unduche F |
https://doi.org/10.36334/modsim2025.C07.razavi |
https://mssanz.org.au/modsim2025/files/C07.razavi.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
R |
| Unduche F |
Importance of scientific rigour in validating machine learning models: The Google global flood model example |
Razavi S, Li K, Maier HR, Hrachowitz M, Nabavi E, Harvey N, Akhtar K, Unduche F |
https://doi.org/10.36334/modsim2025.C07.razavi |
https://mssanz.org.au/modsim2025/files/C07.razavi.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
U |
| Darr S |
Improved hillslope erosion prediction for the Great Barrier Reef Catchments |
Yu B, Rahman J, Darr S, Fentie B |
https://doi.org/10.36334/modsim2025.L04.yu |
https://mssanz.org.au/modsim2025/files/L04.yu.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
D |
| Fentie B |
Improved hillslope erosion prediction for the Great Barrier Reef Catchments |
Yu B, Rahman J, Darr S, Fentie B |
https://doi.org/10.36334/modsim2025.L04.yu |
https://mssanz.org.au/modsim2025/files/L04.yu.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
F |
| Rahman J (Joel) |
Improved hillslope erosion prediction for the Great Barrier Reef Catchments |
Yu B, Rahman J, Darr S, Fentie B |
https://doi.org/10.36334/modsim2025.L04.yu |
https://mssanz.org.au/modsim2025/files/L04.yu.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
R |
| Yu B |
Improved hillslope erosion prediction for the Great Barrier Reef Catchments |
Yu B, Rahman J, Darr S, Fentie B |
https://doi.org/10.36334/modsim2025.L04.yu |
https://mssanz.org.au/modsim2025/files/L04.yu.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
Y |
| Fowler J (John) |
Improving adoption of quantum vector annealing in supply chains |
Rogers D, Fowler J |
https://doi.org/10.36334/modsim2025.M02.rogersd |
https://mssanz.org.au/modsim2025/files/M02.rogersd.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
F |
| Rogers D |
Improving adoption of quantum vector annealing in supply chains |
Rogers D, Fowler J |
https://doi.org/10.36334/modsim2025.M02.rogersd |
https://mssanz.org.au/modsim2025/files/M02.rogersd.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
R |
| Chen D (Deli) |
Improving APSIM modules for enhanced-efficiency fertilizers to simulate N2O emissions in vegetable systems |
Liu D, Pan B, Lam SK, Chen D |
https://doi.org/10.36334/modsim2025.B03.liu |
https://mssanz.org.au/modsim2025/files/B03.liu.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
C |
| Lam SK (Shu Kee) |
Improving APSIM modules for enhanced-efficiency fertilizers to simulate N2O emissions in vegetable systems |
Liu D, Pan B, Lam SK, Chen D |
https://doi.org/10.36334/modsim2025.B03.liu |
https://mssanz.org.au/modsim2025/files/B03.liu.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
L |
| Liu D (Deyao) |
Improving APSIM modules for enhanced-efficiency fertilizers to simulate N2O emissions in vegetable systems |
Liu D, Pan B, Lam SK, Chen D |
https://doi.org/10.36334/modsim2025.B03.liu |
https://mssanz.org.au/modsim2025/files/B03.liu.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
L |
| Pan B (Baobao) |
Improving APSIM modules for enhanced-efficiency fertilizers to simulate N2O emissions in vegetable systems |
Liu D, Pan B, Lam SK, Chen D |
https://doi.org/10.36334/modsim2025.B03.liu |
https://mssanz.org.au/modsim2025/files/B03.liu.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
P |
| Croke B |
Improving the discrete form of the Nash cascade |
Croke B, McCulloch G |
https://doi.org/10.36334/modsim2025.A02.croke |
https://mssanz.org.au/modsim2025/files/A02.croke.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
C |
| McCulloch G |
Improving the discrete form of the Nash cascade |
Croke B, McCulloch G |
https://doi.org/10.36334/modsim2025.A02.croke |
https://mssanz.org.au/modsim2025/files/A02.croke.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
M |
| Chen D (Dawei) |
Improving the understanding and prediction of low extreme dissolved oxygen (DO) events in Victorian rivers |
Yan P, Pietsch H, Chen D, Guo D |
https://doi.org/10.36334/modsim2025.L01.yan |
https://mssanz.org.au/modsim2025/files/L01.yan.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
C |
| Guo D (Danlu) |
Improving the understanding and prediction of low extreme dissolved oxygen (DO) events in Victorian rivers |
Yan P, Pietsch H, Chen D, Guo D |
https://doi.org/10.36334/modsim2025.L01.yan |
https://mssanz.org.au/modsim2025/files/L01.yan.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
G |
| Pietsch H |
Improving the understanding and prediction of low extreme dissolved oxygen (DO) events in Victorian rivers |
Yan P, Pietsch H, Chen D, Guo D |
https://doi.org/10.36334/modsim2025.L01.yan |
https://mssanz.org.au/modsim2025/files/L01.yan.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
P |
| Yan P (Peiran) |
Improving the understanding and prediction of low extreme dissolved oxygen (DO) events in Victorian rivers |
Yan P, Pietsch H, Chen D, Guo D |
https://doi.org/10.36334/modsim2025.L01.yan |
https://mssanz.org.au/modsim2025/files/L01.yan.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
Y |
| Ghobakhlou A |
Impute-Net: A deep learning approach to missing observations in satellite imagery |
Pahlevi AR, Ghobakhlou A, Whalley J |
https://doi.org/10.36334/modsim2025.F10.pahlevi |
https://mssanz.org.au/modsim2025/files/F10.pahlevi.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
G |
| Pahlevi AR |
Impute-Net: A deep learning approach to missing observations in satellite imagery |
Pahlevi AR, Ghobakhlou A, Whalley J |
https://doi.org/10.36334/modsim2025.F10.pahlevi |
https://mssanz.org.au/modsim2025/files/F10.pahlevi.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
P |
| Whalley J |
Impute-Net: A deep learning approach to missing observations in satellite imagery |
Pahlevi AR, Ghobakhlou A, Whalley J |
https://doi.org/10.36334/modsim2025.F10.pahlevi |
https://mssanz.org.au/modsim2025/files/F10.pahlevi.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
W |
| Mateo C |
Including flooded vegetation in Earth-observation flood maps to assist in the assessment of hydrological models |
Ticehurst CJ, Vaze J, Montazeri M, Mateo C, Nguyen C |
https://doi.org/10.36334/modsim2025.G09.ticehurst |
https://mssanz.org.au/modsim2025/files/G09.ticehurst.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
M |
| Montazeri M |
Including flooded vegetation in Earth-observation flood maps to assist in the assessment of hydrological models |
Ticehurst CJ, Vaze J, Montazeri M, Mateo C, Nguyen C |
https://doi.org/10.36334/modsim2025.G09.ticehurst |
https://mssanz.org.au/modsim2025/files/G09.ticehurst.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
M |
| Nguyen C |
Including flooded vegetation in Earth-observation flood maps to assist in the assessment of hydrological models |
Ticehurst CJ, Vaze J, Montazeri M, Mateo C, Nguyen C |
https://doi.org/10.36334/modsim2025.G09.ticehurst |
https://mssanz.org.au/modsim2025/files/G09.ticehurst.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
N |
| Ticehurst CJ |
Including flooded vegetation in Earth-observation flood maps to assist in the assessment of hydrological models |
Ticehurst CJ, Vaze J, Montazeri M, Mateo C, Nguyen C |
https://doi.org/10.36334/modsim2025.G09.ticehurst |
https://mssanz.org.au/modsim2025/files/G09.ticehurst.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
T |
| Vaze J |
Including flooded vegetation in Earth-observation flood maps to assist in the assessment of hydrological models |
Ticehurst CJ, Vaze J, Montazeri M, Mateo C, Nguyen C |
https://doi.org/10.36334/modsim2025.G09.ticehurst |
https://mssanz.org.au/modsim2025/files/G09.ticehurst.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
V |
| Campos Teixeira P |
Incorporating land use change adjustments into basin-scale groundwater recharge estimates in the Murray-Darling Basin |
Crosbie R, Campos Teixeira P |
https://doi.org/10.36334/modsim2025.J03.crosbie |
https://mssanz.org.au/modsim2025/files/J03.crosbie.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
C |
| Crosbie RS |
Incorporating land use change adjustments into basin-scale groundwater recharge estimates in the Murray-Darling Basin |
Crosbie R, Campos Teixeira P |
https://doi.org/10.36334/modsim2025.J03.crosbie |
https://mssanz.org.au/modsim2025/files/J03.crosbie.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
C |
| Dodd M |
Incorporating treading damage on wet soils in APSIM |
Dodd B, Foster J, Graham P |
https://doi.org/10.36334/modsim2025.B03.dodd |
https://mssanz.org.au/modsim2025/files/B03.dodd.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
D |
| Snow V |
Incorporating treading damage on wet soils in APSIM |
Dodd B, Foster J, Graham P |
https://doi.org/10.36334/modsim2025.B03.dodd |
https://mssanz.org.au/modsim2025/files/B03.dodd.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
S |
| Triadis D |
Incorporating treading damage on wet soils in APSIM |
Dodd B, Foster J, Graham P |
https://doi.org/10.36334/modsim2025.B03.dodd |
https://mssanz.org.au/modsim2025/files/B03.dodd.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
T |
| McRae RHD |
Indirect effects of climate change on forests and their fires – pitfalls for modellers |
McRae RHD |
https://doi.org/10.36334/modsim2025.G08.mcrae |
https://mssanz.org.au/modsim2025/files/G08.mcrae.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
M |
| Hayde P |
Industry application of multispecies modelling to track chloramine decay in a water network |
Obeid R, Hayde P |
https://doi.org/10.36334/modsim2025.L03.obeid |
https://mssanz.org.au/modsim2025/files/L03.obeid.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
H |
| Obeid R |
Industry application of multispecies modelling to track chloramine decay in a water network |
Obeid R, Hayde P |
https://doi.org/10.36334/modsim2025.L03.obeid |
https://mssanz.org.au/modsim2025/files/L03.obeid.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
O |
| Cao Y (Yuan) |
Informed performance assessment of water resources systems under uncertainty by considering trade-offs between performance and risk appetite (NVITED SPEAKER) |
Cao Y, Wu W, Maier HR, Gibbs MS |
https://doi.org/10.36334/modsim2025.J08.cao |
https://mssanz.org.au/modsim2025/files/J08.cao.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
C |
| Gibbs MS |
Informed performance assessment of water resources systems under uncertainty by considering trade-offs between performance and risk appetite (NVITED SPEAKER) |
Cao Y, Wu W, Maier HR, Gibbs MS |
https://doi.org/10.36334/modsim2025.J08.cao |
https://mssanz.org.au/modsim2025/files/J08.cao.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
G |
| Maier HR |
Informed performance assessment of water resources systems under uncertainty by considering trade-offs between performance and risk appetite (NVITED SPEAKER) |
Cao Y, Wu W, Maier HR, Gibbs MS |
https://doi.org/10.36334/modsim2025.J08.cao |
https://mssanz.org.au/modsim2025/files/J08.cao.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
M |
| Wu W (Wenyan) |
Informed performance assessment of water resources systems under uncertainty by considering trade-offs between performance and risk appetite (NVITED SPEAKER) |
Cao Y, Wu W, Maier HR, Gibbs MS |
https://doi.org/10.36334/modsim2025.J08.cao |
https://mssanz.org.au/modsim2025/files/J08.cao.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
W |
| Bolz P |
Informing risk and opportunity management in coal mine pit lakes via modelling experiments |
Bulovic N, McIntyre N, Chrystal R, Bolz P |
https://doi.org/10.36334/modsim2025.L02.bulovic |
https://mssanz.org.au/modsim2025/files/L02.bulovic.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
B |
| Bulovic N |
Informing risk and opportunity management in coal mine pit lakes via modelling experiments |
Bulovic N, McIntyre N, Chrystal R, Bolz P |
https://doi.org/10.36334/modsim2025.L02.bulovic |
https://mssanz.org.au/modsim2025/files/L02.bulovic.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
B |
| Chrystal R |
Informing risk and opportunity management in coal mine pit lakes via modelling experiments |
Bulovic N, McIntyre N, Chrystal R, Bolz P |
https://doi.org/10.36334/modsim2025.L02.bulovic |
https://mssanz.org.au/modsim2025/files/L02.bulovic.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
C |
| McIntyre N |
Informing risk and opportunity management in coal mine pit lakes via modelling experiments |
Bulovic N, McIntyre N, Chrystal R, Bolz P |
https://doi.org/10.36334/modsim2025.L02.bulovic |
https://mssanz.org.au/modsim2025/files/L02.bulovic.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
M |
| Armstrong M |
Integrated assessment and modelling for water management: lessons from transdisciplinary research |
Hamilton SH, Merritt W, Jakeman AJ, Elsawah S, Pollino C, Horne A, Armstrong M, Maier HR |
https://doi.org/10.36334/modsim2025.J05.hamilton |
https://mssanz.org.au/modsim2025/files/J05.hamilton.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
A |
| Elsawah S |
Integrated assessment and modelling for water management: lessons from transdisciplinary research |
Hamilton SH, Merritt W, Jakeman AJ, Elsawah S, Pollino C, Horne A, Armstrong M, Maier HR |
https://doi.org/10.36334/modsim2025.J05.hamilton |
https://mssanz.org.au/modsim2025/files/J05.hamilton.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
E |
| Hamilton SH |
Integrated assessment and modelling for water management: lessons from transdisciplinary research |
Hamilton SH, Merritt W, Jakeman AJ, Elsawah S, Pollino C, Horne A, Armstrong M, Maier HR |
https://doi.org/10.36334/modsim2025.J05.hamilton |
https://mssanz.org.au/modsim2025/files/J05.hamilton.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
H |
| Horne A |
Integrated assessment and modelling for water management: lessons from transdisciplinary research |
Hamilton SH, Merritt W, Jakeman AJ, Elsawah S, Pollino C, Horne A, Armstrong M, Maier HR |
https://doi.org/10.36334/modsim2025.J05.hamilton |
https://mssanz.org.au/modsim2025/files/J05.hamilton.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
H |
| Jakeman AJ |
Integrated assessment and modelling for water management: lessons from transdisciplinary research |
Hamilton SH, Merritt W, Jakeman AJ, Elsawah S, Pollino C, Horne A, Armstrong M, Maier HR |
https://doi.org/10.36334/modsim2025.J05.hamilton |
https://mssanz.org.au/modsim2025/files/J05.hamilton.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
J |
| Maier HR |
Integrated assessment and modelling for water management: lessons from transdisciplinary research |
Hamilton SH, Merritt W, Jakeman AJ, Elsawah S, Pollino C, Horne A, Armstrong M, Maier HR |
https://doi.org/10.36334/modsim2025.J05.hamilton |
https://mssanz.org.au/modsim2025/files/J05.hamilton.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
M |
| Merritt W |
Integrated assessment and modelling for water management: lessons from transdisciplinary research |
Hamilton SH, Merritt W, Jakeman AJ, Elsawah S, Pollino C, Horne A, Armstrong M, Maier HR |
https://doi.org/10.36334/modsim2025.J05.hamilton |
https://mssanz.org.au/modsim2025/files/J05.hamilton.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
M |
| Pollino C |
Integrated assessment and modelling for water management: lessons from transdisciplinary research |
Hamilton SH, Merritt W, Jakeman AJ, Elsawah S, Pollino C, Horne A, Armstrong M, Maier HR |
https://doi.org/10.36334/modsim2025.J05.hamilton |
https://mssanz.org.au/modsim2025/files/J05.hamilton.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
P |
| Haslum P |
Integrated task and motion planning for keel block optimisation at Captain Cook Graving Dock |
Jones W, Kurniawati H, Haslum P, Manchester I |
https://doi.org/10.36334/modsim2025.M01.jones |
https://mssanz.org.au/modsim2025/files/M01.jones.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
H |
| Jones W |
Integrated task and motion planning for keel block optimisation at Captain Cook Graving Dock |
Jones W, Kurniawati H, Haslum P, Manchester I |
https://doi.org/10.36334/modsim2025.M01.jones |
https://mssanz.org.au/modsim2025/files/M01.jones.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
J |
| Kurniawati H |
Integrated task and motion planning for keel block optimisation at Captain Cook Graving Dock |
Jones W, Kurniawati H, Haslum P, Manchester I |
https://doi.org/10.36334/modsim2025.M01.jones |
https://mssanz.org.au/modsim2025/files/M01.jones.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
K |
| Manchester I |
Integrated task and motion planning for keel block optimisation at Captain Cook Graving Dock |
Jones W, Kurniawati H, Haslum P, Manchester I |
https://doi.org/10.36334/modsim2025.M01.jones |
https://mssanz.org.au/modsim2025/files/M01.jones.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
M |
| Chapman SC |
Integrating crop modelling and machine learning for non-destructive estimation of crop traits |
Chen Q, Hu P, Zheng B, Chapman SC |
https://doi.org/10.36334/modsim2025.B08.chenq |
https://mssanz.org.au/modsim2025/files/B08.chenq.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
C |
| Chen Q (Qiaomin) |
Integrating crop modelling and machine learning for non-destructive estimation of crop traits |
Chen Q, Hu P, Zheng B, Chapman SC |
https://doi.org/10.36334/modsim2025.B08.chenq |
https://mssanz.org.au/modsim2025/files/B08.chenq.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
C |
| Hu P (Pengcheng) |
Integrating crop modelling and machine learning for non-destructive estimation of crop traits |
Chen Q, Hu P, Zheng B, Chapman SC |
https://doi.org/10.36334/modsim2025.B08.chenq |
https://mssanz.org.au/modsim2025/files/B08.chenq.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
H |
| Zheng B (Bangyou) |
Integrating crop modelling and machine learning for non-destructive estimation of crop traits |
Chen Q, Hu P, Zheng B, Chapman SC |
https://doi.org/10.36334/modsim2025.B08.chenq |
https://mssanz.org.au/modsim2025/files/B08.chenq.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
Z |
| Barker L |
Integrating Indigenous Knowledge and Indigenous Data Sovereignty for sustainable water management |
Sedran‑Price C, Dixon A, Connolly M, Barker R, Barker L, Van Ogtrop F, Hooper F |
https://doi.org/10.36334/modsim2025.J07.sedranprice |
https://mssanz.org.au/modsim2025/files/J07.sedranprice.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
B |
| Barker R |
Integrating Indigenous Knowledge and Indigenous Data Sovereignty for sustainable water management |
Sedran‑Price C, Dixon A, Connolly M, Barker R, Barker L, Van Ogtrop F, Hooper F |
https://doi.org/10.36334/modsim2025.J07.sedranprice |
https://mssanz.org.au/modsim2025/files/J07.sedranprice.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
B |
| Connolly M |
Integrating Indigenous Knowledge and Indigenous Data Sovereignty for sustainable water management |
Sedran‑Price C, Dixon A, Connolly M, Barker R, Barker L, Van Ogtrop F, Hooper F |
https://doi.org/10.36334/modsim2025.J07.sedranprice |
https://mssanz.org.au/modsim2025/files/J07.sedranprice.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
C |
| Dixon A |
Integrating Indigenous Knowledge and Indigenous Data Sovereignty for sustainable water management |
Sedran‑Price C, Dixon A, Connolly M, Barker R, Barker L, Van Ogtrop F, Hooper F |
https://doi.org/10.36334/modsim2025.J07.sedranprice |
https://mssanz.org.au/modsim2025/files/J07.sedranprice.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
D |
| Hooper F |
Integrating Indigenous Knowledge and Indigenous Data Sovereignty for sustainable water management |
Sedran‑Price C, Dixon A, Connolly M, Barker R, Barker L, Van Ogtrop F, Hooper F |
https://doi.org/10.36334/modsim2025.J07.sedranprice |
https://mssanz.org.au/modsim2025/files/J07.sedranprice.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
H |
| Sedran‑Price C |
Integrating Indigenous Knowledge and Indigenous Data Sovereignty for sustainable water management |
Sedran‑Price C, Dixon A, Connolly M, Barker R, Barker L, Van Ogtrop F, Hooper F |
https://doi.org/10.36334/modsim2025.J07.sedranprice |
https://mssanz.org.au/modsim2025/files/J07.sedranprice.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
S |
| Van Ogtrop F |
Integrating Indigenous Knowledge and Indigenous Data Sovereignty for sustainable water management |
Sedran‑Price C, Dixon A, Connolly M, Barker R, Barker L, Van Ogtrop F, Hooper F |
https://doi.org/10.36334/modsim2025.J07.sedranprice |
https://mssanz.org.au/modsim2025/files/J07.sedranprice.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
V |
| Biddulph B |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
B |
| Bloomfield M |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
B |
| Brown H (Hamish) |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
B |
| Celestina C |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
C |
| Harris F |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Hu P (Pengcheng) |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Hunt J |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Huth N |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Hyles J |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Lilley J |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
L |
| Porker K |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
P |
| Trevaskis B |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
T |
| Wang E (Enli) |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
W |
| Whish J |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
W |
| Zhao Z (Zhigan) |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
Z |
| Zheng B (Bangyou) |
Integrating molecular insights into phenology modelling enhances flowering time predictions (INVITED SPEAKER) |
Wang E, Brown H, Zheng B, Zhao Z, Huth N, Hunt J, Hyles J, Bloomfield M, Celestina C, Porker K, Harris F, Biddulph B, Trevaskis B, Hu P, Lilley J, Whish J |
https://doi.org/10.36334/modsim2025.B02.wang |
https://mssanz.org.au/modsim2025/files/B02.wang.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
Z |
| Gong H (Huili) |
Integrating time-series InSAR and ensemble learning model for land subsidence susceptibility mapping |
Li S, Zhu L, Gong H, Li X, Zhang N, Meng X |
https://doi.org/10.36334/modsim2025.G02.li |
https://mssanz.org.au/modsim2025/files/G02.li.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
G |
| Li S (Shuai) |
Integrating time-series InSAR and ensemble learning model for land subsidence susceptibility mapping |
Li S, Zhu L, Gong H, Li X, Zhang N, Meng X |
https://doi.org/10.36334/modsim2025.G02.li |
https://mssanz.org.au/modsim2025/files/G02.li.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
L |
| Li X (Xiaojuan) |
Integrating time-series InSAR and ensemble learning model for land subsidence susceptibility mapping |
Li S, Zhu L, Gong H, Li X, Zhang N, Meng X |
https://doi.org/10.36334/modsim2025.G02.li |
https://mssanz.org.au/modsim2025/files/G02.li.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
L |
| Meng X (Xiangyu) |
Integrating time-series InSAR and ensemble learning model for land subsidence susceptibility mapping |
Li S, Zhu L, Gong H, Li X, Zhang N, Meng X |
https://doi.org/10.36334/modsim2025.G02.li |
https://mssanz.org.au/modsim2025/files/G02.li.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
M |
| Zhang N (Ning) |
Integrating time-series InSAR and ensemble learning model for land subsidence susceptibility mapping |
Li S, Zhu L, Gong H, Li X, Zhang N, Meng X |
https://doi.org/10.36334/modsim2025.G02.li |
https://mssanz.org.au/modsim2025/files/G02.li.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Z |
| Zhu L (Lin) |
Integrating time-series InSAR and ensemble learning model for land subsidence susceptibility mapping |
Li S, Zhu L, Gong H, Li X, Zhang N, Meng X |
https://doi.org/10.36334/modsim2025.G02.li |
https://mssanz.org.au/modsim2025/files/G02.li.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Z |
| Cao Y (Yuan) |
Integration of operational and infrastructure decisions into long-term planning and management of water resources systems under deep uncertainty |
Huang J, Wu W, Maier HR, Hughes J, Wang QJ, Cao Y |
https://doi.org/10.36334/modsim2025.J08.huang |
https://mssanz.org.au/modsim2025/files/J08.huang.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
C |
| Huang J (Jiajia) |
Integration of operational and infrastructure decisions into long-term planning and management of water resources systems under deep uncertainty |
Huang J, Wu W, Maier HR, Hughes J, Wang QJ, Cao Y |
https://doi.org/10.36334/modsim2025.J08.huang |
https://mssanz.org.au/modsim2025/files/J08.huang.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
H |
| Hughes J |
Integration of operational and infrastructure decisions into long-term planning and management of water resources systems under deep uncertainty |
Huang J, Wu W, Maier HR, Hughes J, Wang QJ, Cao Y |
https://doi.org/10.36334/modsim2025.J08.huang |
https://mssanz.org.au/modsim2025/files/J08.huang.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
H |
| Maier HR |
Integration of operational and infrastructure decisions into long-term planning and management of water resources systems under deep uncertainty |
Huang J, Wu W, Maier HR, Hughes J, Wang QJ, Cao Y |
https://doi.org/10.36334/modsim2025.J08.huang |
https://mssanz.org.au/modsim2025/files/J08.huang.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
M |
| Wang QJ |
Integration of operational and infrastructure decisions into long-term planning and management of water resources systems under deep uncertainty |
Huang J, Wu W, Maier HR, Hughes J, Wang QJ, Cao Y |
https://doi.org/10.36334/modsim2025.J08.huang |
https://mssanz.org.au/modsim2025/files/J08.huang.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
W |
| Wu W (Wenyan) |
Integration of operational and infrastructure decisions into long-term planning and management of water resources systems under deep uncertainty |
Huang J, Wu W, Maier HR, Hughes J, Wang QJ, Cao Y |
https://doi.org/10.36334/modsim2025.J08.huang |
https://mssanz.org.au/modsim2025/files/J08.huang.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
W |
| Ashman P |
Integration of variable-rate industrial processes with variable renewable energy: A case study in H2-DRI |
Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Rahbari A, Convetry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.fontalvo |
https://mssanz.org.au/modsim2025/files/E02.fontalvo.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
A |
| Benz T |
Integration of variable-rate industrial processes with variable renewable energy: A case study in H2-DRI |
Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Rahbari A, Convetry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.fontalvo |
https://mssanz.org.au/modsim2025/files/E02.fontalvo.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
B |
| Convetry J |
Integration of variable-rate industrial processes with variable renewable energy: A case study in H2-DRI |
Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Rahbari A, Convetry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.fontalvo |
https://mssanz.org.au/modsim2025/files/E02.fontalvo.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
C |
| Fontalvo A |
Integration of variable-rate industrial processes with variable renewable energy: A case study in H2-DRI |
Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Rahbari A, Convetry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.fontalvo |
https://mssanz.org.au/modsim2025/files/E02.fontalvo.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
F |
| Pye J |
Integration of variable-rate industrial processes with variable renewable energy: A case study in H2-DRI |
Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Rahbari A, Convetry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.fontalvo |
https://mssanz.org.au/modsim2025/files/E02.fontalvo.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
P |
| Rahbari A |
Integration of variable-rate industrial processes with variable renewable energy: A case study in H2-DRI |
Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Rahbari A, Convetry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.fontalvo |
https://mssanz.org.au/modsim2025/files/E02.fontalvo.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
R |
| Saw W |
Integration of variable-rate industrial processes with variable renewable energy: A case study in H2-DRI |
Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Rahbari A, Convetry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.fontalvo |
https://mssanz.org.au/modsim2025/files/E02.fontalvo.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
S |
| Wang Y (Ye) |
Integration of variable-rate industrial processes with variable renewable energy: A case study in H2-DRI |
Fontalvo A, Wang Y, Benz T, Saw W, Ashman P, Rahbari A, Convetry J, Pye J |
https://doi.org/10.36334/modsim2025.E02.fontalvo |
https://mssanz.org.au/modsim2025/files/E02.fontalvo.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
W |
| Di Virgilio G |
Intensification of short-duration extreme precipitation over Greater Sydney: Observations and climate projections |
Khadke L, Evans JP, Kim Y, Di Virgilio G |
https://doi.org/10.36334/modsim2025.G04.khadke |
https://mssanz.org.au/modsim2025/files/G04.khadke.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
D |
| Evans JP |
Intensification of short-duration extreme precipitation over Greater Sydney: Observations and climate projections |
Khadke L, Evans JP, Kim Y, Di Virgilio G |
https://doi.org/10.36334/modsim2025.G04.khadke |
https://mssanz.org.au/modsim2025/files/G04.khadke.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
E |
| Khadke L |
Intensification of short-duration extreme precipitation over Greater Sydney: Observations and climate projections |
Khadke L, Evans JP, Kim Y, Di Virgilio G |
https://doi.org/10.36334/modsim2025.G04.khadke |
https://mssanz.org.au/modsim2025/files/G04.khadke.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
K |
| Kim Y (Youngil) |
Intensification of short-duration extreme precipitation over Greater Sydney: Observations and climate projections |
Khadke L, Evans JP, Kim Y, Di Virgilio G |
https://doi.org/10.36334/modsim2025.G04.khadke |
https://mssanz.org.au/modsim2025/files/G04.khadke.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
K |
| Chen Y (Yaning) |
Intensified water-ecological risks in the arid regions of Central Asia under global warming |
Chen Y, Li Z, Wang C, Wang X |
https://doi.org/10.36334/modsim2025.K03.chen |
https://mssanz.org.au/modsim2025/files/K03.chen.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
C |
| Li Z (Zhi) |
Intensified water-ecological risks in the arid regions of Central Asia under global warming |
Chen Y, Li Z, Wang C, Wang X |
https://doi.org/10.36334/modsim2025.K03.chen |
https://mssanz.org.au/modsim2025/files/K03.chen.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
L |
| Wang C (Chuan) |
Intensified water-ecological risks in the arid regions of Central Asia under global warming |
Chen Y, Li Z, Wang C, Wang X |
https://doi.org/10.36334/modsim2025.K03.chen |
https://mssanz.org.au/modsim2025/files/K03.chen.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
W |
| Wang X (Xuechun) |
Intensified water-ecological risks in the arid regions of Central Asia under global warming |
Chen Y, Li Z, Wang C, Wang X |
https://doi.org/10.36334/modsim2025.K03.chen |
https://mssanz.org.au/modsim2025/files/K03.chen.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
W |
| Tu Z |
Interactive effects of vegetation responses to elevated atmospheric CO₂ on drought conditions in Asia |
Tu Z |
https://doi.org/10.36334/modsim2025.J06.tu |
https://mssanz.org.au/modsim2025/files/J06.tu.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
T |
| Chopin J (Joshua) |
Interpretable deep learning for energy forecasting and outlier detection |
Chopin J |
https://doi.org/10.36334/modsim2025.E04.chopin |
https://mssanz.org.au/modsim2025/files/E04.chopin.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
C |
| Iwanaga T |
Interpretable sensitivity analysis of a coral ecosystem model: An assessment of CoralBlox with Shapley Effects |
Ribeiro de Almeida P, Tan D, Matthews S, Iwanaga T |
https://doi.org/10.36334/modsim2025.F05.ribeirodealmeida |
https://mssanz.org.au/modsim2025/files/F05.ribeirodealmeida.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
I |
| Matthews S |
Interpretable sensitivity analysis of a coral ecosystem model: An assessment of CoralBlox with Shapley Effects |
Ribeiro de Almeida P, Tan D, Matthews S, Iwanaga T |
https://doi.org/10.36334/modsim2025.F05.ribeirodealmeida |
https://mssanz.org.au/modsim2025/files/F05.ribeirodealmeida.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
M |
| Ribeiro de Almeida P |
Interpretable sensitivity analysis of a coral ecosystem model: An assessment of CoralBlox with Shapley Effects |
Ribeiro de Almeida P, Tan D, Matthews S, Iwanaga T |
https://doi.org/10.36334/modsim2025.F05.ribeirodealmeida |
https://mssanz.org.au/modsim2025/files/F05.ribeirodealmeida.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
R |
| Tan D (Daniel) |
Interpretable sensitivity analysis of a coral ecosystem model: An assessment of CoralBlox with Shapley Effects |
Ribeiro de Almeida P, Tan D, Matthews S, Iwanaga T |
https://doi.org/10.36334/modsim2025.F05.ribeirodealmeida |
https://mssanz.org.au/modsim2025/files/F05.ribeirodealmeida.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
T |
| Bridgart R |
Introducing a fast and scalable method for floodplain inundation modelling |
Teng J, Yang A, Penton DJ, Ticehurst C, Marvanek S, Vaze J, Mateo C, Bridgart R |
https://doi.org/10.36334/modsim2025.G09.teng |
https://mssanz.org.au/modsim2025/files/G09.teng.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
B |
| Marvanek S |
Introducing a fast and scalable method for floodplain inundation modelling |
Teng J, Yang A, Penton DJ, Ticehurst C, Marvanek S, Vaze J, Mateo C, Bridgart R |
https://doi.org/10.36334/modsim2025.G09.teng |
https://mssanz.org.au/modsim2025/files/G09.teng.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
M |
| Mateo C |
Introducing a fast and scalable method for floodplain inundation modelling |
Teng J, Yang A, Penton DJ, Ticehurst C, Marvanek S, Vaze J, Mateo C, Bridgart R |
https://doi.org/10.36334/modsim2025.G09.teng |
https://mssanz.org.au/modsim2025/files/G09.teng.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
M |
| Penton DJ |
Introducing a fast and scalable method for floodplain inundation modelling |
Teng J, Yang A, Penton DJ, Ticehurst C, Marvanek S, Vaze J, Mateo C, Bridgart R |
https://doi.org/10.36334/modsim2025.G09.teng |
https://mssanz.org.au/modsim2025/files/G09.teng.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
P |
| Teng J |
Introducing a fast and scalable method for floodplain inundation modelling |
Teng J, Yang A, Penton DJ, Ticehurst C, Marvanek S, Vaze J, Mateo C, Bridgart R |
https://doi.org/10.36334/modsim2025.G09.teng |
https://mssanz.org.au/modsim2025/files/G09.teng.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
T |
| Ticehurst C |
Introducing a fast and scalable method for floodplain inundation modelling |
Teng J, Yang A, Penton DJ, Ticehurst C, Marvanek S, Vaze J, Mateo C, Bridgart R |
https://doi.org/10.36334/modsim2025.G09.teng |
https://mssanz.org.au/modsim2025/files/G09.teng.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
T |
| Vaze J |
Introducing a fast and scalable method for floodplain inundation modelling |
Teng J, Yang A, Penton DJ, Ticehurst C, Marvanek S, Vaze J, Mateo C, Bridgart R |
https://doi.org/10.36334/modsim2025.G09.teng |
https://mssanz.org.au/modsim2025/files/G09.teng.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
V |
| Yang A |
Introducing a fast and scalable method for floodplain inundation modelling |
Teng J, Yang A, Penton DJ, Ticehurst C, Marvanek S, Vaze J, Mateo C, Bridgart R |
https://doi.org/10.36334/modsim2025.G09.teng |
https://mssanz.org.au/modsim2025/files/G09.teng.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
Y |
| Bradhurst R |
Investigating the influence of disease spillover between feral and domestic pigs in ASF outbreaks using AADIS |
Oberin M, Stevenson M, Brookes V, Firestone S, Bradhurst R |
https://doi.org/10.36334/modsim2025.M02.oberin |
https://mssanz.org.au/modsim2025/files/M02.oberin.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
B |
| Brookes V |
Investigating the influence of disease spillover between feral and domestic pigs in ASF outbreaks using AADIS |
Oberin M, Stevenson M, Brookes V, Firestone S, Bradhurst R |
https://doi.org/10.36334/modsim2025.M02.oberin |
https://mssanz.org.au/modsim2025/files/M02.oberin.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
B |
| Firestone S |
Investigating the influence of disease spillover between feral and domestic pigs in ASF outbreaks using AADIS |
Oberin M, Stevenson M, Brookes V, Firestone S, Bradhurst R |
https://doi.org/10.36334/modsim2025.M02.oberin |
https://mssanz.org.au/modsim2025/files/M02.oberin.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
F |
| Oberin M |
Investigating the influence of disease spillover between feral and domestic pigs in ASF outbreaks using AADIS |
Oberin M, Stevenson M, Brookes V, Firestone S, Bradhurst R |
https://doi.org/10.36334/modsim2025.M02.oberin |
https://mssanz.org.au/modsim2025/files/M02.oberin.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
O |
| Stevenson M |
Investigating the influence of disease spillover between feral and domestic pigs in ASF outbreaks using AADIS |
Oberin M, Stevenson M, Brookes V, Firestone S, Bradhurst R |
https://doi.org/10.36334/modsim2025.M02.oberin |
https://mssanz.org.au/modsim2025/files/M02.oberin.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
S |
| Haque KMS |
Irrigated rice yield response to projected climate change in northwest Bangladesh |
Hossain MB, Zeleke K, Liu DL, Haque KMS, Wang B |
https://doi.org/10.36334/modsim2025.B08.hossain |
https://mssanz.org.au/modsim2025/files/B08.hossain.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
H |
| Hossain MB |
Irrigated rice yield response to projected climate change in northwest Bangladesh |
Hossain MB, Zeleke K, Liu DL, Haque KMS, Wang B |
https://doi.org/10.36334/modsim2025.B08.hossain |
https://mssanz.org.au/modsim2025/files/B08.hossain.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
H |
| Liu DL (De Li) |
Irrigated rice yield response to projected climate change in northwest Bangladesh |
Hossain MB, Zeleke K, Liu DL, Haque KMS, Wang B |
https://doi.org/10.36334/modsim2025.B08.hossain |
https://mssanz.org.au/modsim2025/files/B08.hossain.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
L |
| Wang B (Bin) |
Irrigated rice yield response to projected climate change in northwest Bangladesh |
Hossain MB, Zeleke K, Liu DL, Haque KMS, Wang B |
https://doi.org/10.36334/modsim2025.B08.hossain |
https://mssanz.org.au/modsim2025/files/B08.hossain.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
W |
| Zeleke K |
Irrigated rice yield response to projected climate change in northwest Bangladesh |
Hossain MB, Zeleke K, Liu DL, Haque KMS, Wang B |
https://doi.org/10.36334/modsim2025.B08.hossain |
https://mssanz.org.au/modsim2025/files/B08.hossain.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
Z |
| Weber T |
Is our approach to rainfall-runoff modelling future climate ready? |
Weber T |
https://doi.org/10.36334/modsim2025.J07.weber |
https://mssanz.org.au/modsim2025/files/J07.weber.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
W |
| Magsarjav S |
Is traditional natural language processing ‘dead’? |
Magsarjav S |
https://doi.org/10.36334/modsim2025.A03.magsarjav |
https://mssanz.org.au/modsim2025/files/A03.magsarjav.pdf |
A |
Applied and computational mathematics |
A3 |
Modelling and simulation for trustworthy data science on challenging datasets |
M |
| Ghasemi M (Mohammad) |
Joint optimisation of app data caching and computation offloading in edge computing |
Raina S, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R |
https://doi.org/10.36334/modsim2025.M03.raina |
https://mssanz.org.au/modsim2025/files/M03.raina.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
G |
| Nazari A |
Joint optimisation of app data caching and computation offloading in edge computing |
Raina S, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R |
https://doi.org/10.36334/modsim2025.M03.raina |
https://mssanz.org.au/modsim2025/files/M03.raina.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
N |
| Raina S |
Joint optimisation of app data caching and computation offloading in edge computing |
Raina S, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R |
https://doi.org/10.36334/modsim2025.M03.raina |
https://mssanz.org.au/modsim2025/files/M03.raina.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
R |
| Thiruvady D |
Joint optimisation of app data caching and computation offloading in edge computing |
Raina S, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R |
https://doi.org/10.36334/modsim2025.M03.raina |
https://mssanz.org.au/modsim2025/files/M03.raina.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
T |
| van der Meer R |
Joint optimisation of app data caching and computation offloading in edge computing |
Raina S, Nazari A, Ghasemi M, Thiruvady D, Van Der Meer R |
https://doi.org/10.36334/modsim2025.M03.raina |
https://mssanz.org.au/modsim2025/files/M03.raina.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
v |
| Bai WLH |
Journey costing based scheduling of uncrewed aerial vehicles with energy constraints and wind effects |
Sherman GD, Bai WLH, Campbell BC |
https://doi.org/10.36334/modsim2025.C02.sherman |
https://mssanz.org.au/modsim2025/files/C02.sherman.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
B |
| Campbell BC (Benjamin C) |
Journey costing based scheduling of uncrewed aerial vehicles with energy constraints and wind effects |
Sherman GD, Bai WLH, Campbell BC |
https://doi.org/10.36334/modsim2025.C02.sherman |
https://mssanz.org.au/modsim2025/files/C02.sherman.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
C |
| Sherman GD |
Journey costing based scheduling of uncrewed aerial vehicles with energy constraints and wind effects |
Sherman GD, Bai WLH, Campbell BC |
https://doi.org/10.36334/modsim2025.C02.sherman |
https://mssanz.org.au/modsim2025/files/C02.sherman.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
S |
| Allingham D |
Knowledge integration and model evaluation for cross-sectoral agricultural climate change modelling |
Allingham D, Lawson J, Ellis B, Kelley J, Young R |
https://doi.org/10.36334/modsim2025.B08.allingham |
https://mssanz.org.au/modsim2025/files/B08.allingham.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
A |
| Ellis B |
Knowledge integration and model evaluation for cross-sectoral agricultural climate change modelling |
Allingham D, Lawson J, Ellis B, Kelley J, Young R |
https://doi.org/10.36334/modsim2025.B08.allingham |
https://mssanz.org.au/modsim2025/files/B08.allingham.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
E |
| Kelley J |
Knowledge integration and model evaluation for cross-sectoral agricultural climate change modelling |
Allingham D, Lawson J, Ellis B, Kelley J, Young R |
https://doi.org/10.36334/modsim2025.B08.allingham |
https://mssanz.org.au/modsim2025/files/B08.allingham.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
K |
| Lawson J |
Knowledge integration and model evaluation for cross-sectoral agricultural climate change modelling |
Allingham D, Lawson J, Ellis B, Kelley J, Young R |
https://doi.org/10.36334/modsim2025.B08.allingham |
https://mssanz.org.au/modsim2025/files/B08.allingham.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
L |
| Young R |
Knowledge integration and model evaluation for cross-sectoral agricultural climate change modelling |
Allingham D, Lawson J, Ellis B, Kelley J, Young R |
https://doi.org/10.36334/modsim2025.B08.allingham |
https://mssanz.org.au/modsim2025/files/B08.allingham.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
Y |
| Jolma A |
Lähde: information system for maintaining up-to-date information on forest resources in Finland |
Jolma A |
https://doi.org/10.36334/modsim2025.F08.jolma |
https://mssanz.org.au/modsim2025/files/F08.jolma.pdf |
F |
Environment and ecology |
F8 |
GIS and environmental modelling |
J |
| Chen B (Beibei) |
Land subsidence and rebound response to groundwater recovery in the Beijing Plain: A new hydrological perspective |
Meng D, Chen B, Gong H, Zhang S, Ma R, Zhou C, Lei K |
https://doi.org/10.36334/modsim2025.G02.meng |
https://mssanz.org.au/modsim2025/files/G02.meng.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
C |
| Gong H (Huili) |
Land subsidence and rebound response to groundwater recovery in the Beijing Plain: A new hydrological perspective |
Meng D, Chen B, Gong H, Zhang S, Ma R, Zhou C, Lei K |
https://doi.org/10.36334/modsim2025.G02.meng |
https://mssanz.org.au/modsim2025/files/G02.meng.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
G |
| Lei K (Kunchao) |
Land subsidence and rebound response to groundwater recovery in the Beijing Plain: A new hydrological perspective |
Meng D, Chen B, Gong H, Zhang S, Ma R, Zhou C, Lei K |
https://doi.org/10.36334/modsim2025.G02.meng |
https://mssanz.org.au/modsim2025/files/G02.meng.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
L |
| Ma R (Rui) |
Land subsidence and rebound response to groundwater recovery in the Beijing Plain: A new hydrological perspective |
Meng D, Chen B, Gong H, Zhang S, Ma R, Zhou C, Lei K |
https://doi.org/10.36334/modsim2025.G02.meng |
https://mssanz.org.au/modsim2025/files/G02.meng.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
M |
| Meng D |
Land subsidence and rebound response to groundwater recovery in the Beijing Plain: A new hydrological perspective |
Meng D, Chen B, Gong H, Zhang S, Ma R, Zhou C, Lei K |
https://doi.org/10.36334/modsim2025.G02.meng |
https://mssanz.org.au/modsim2025/files/G02.meng.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
M |
| Zhang S |
Land subsidence and rebound response to groundwater recovery in the Beijing Plain: A new hydrological perspective |
Meng D, Chen B, Gong H, Zhang S, Ma R, Zhou C, Lei K |
https://doi.org/10.36334/modsim2025.G02.meng |
https://mssanz.org.au/modsim2025/files/G02.meng.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Z |
| Zhou C (Chaofan) |
Land subsidence and rebound response to groundwater recovery in the Beijing Plain: A new hydrological perspective |
Meng D, Chen B, Gong H, Zhang S, Ma R, Zhou C, Lei K |
https://doi.org/10.36334/modsim2025.G02.meng |
https://mssanz.org.au/modsim2025/files/G02.meng.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Z |
| Li C (Congcong) |
Land use and land cover change impact on the actual evapotranspiration in China |
Li C, Zhang Y |
https://doi.org/10.36334/modsim2025.K03.li |
https://mssanz.org.au/modsim2025/files/K03.li.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
L |
| Zhang Y (Yongqiang) |
Land use and land cover change impact on the actual evapotranspiration in China |
Li C, Zhang Y |
https://doi.org/10.36334/modsim2025.K03.li |
https://mssanz.org.au/modsim2025/files/K03.li.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
Z |
| Bennett J |
Learning from model failures: challenges in hydrological observations and modelling |
Johnson F, Bennett J, Fowler K, Thyer M, Wasko C, Saco P, Lerat J |
https://doi.org/10.36334/modsim2025.K05.johnson |
https://mssanz.org.au/modsim2025/files/K05.johnson.pdf |
K |
Hydroclimate |
K5 |
When models fail: lessons learned from false starts, wrong turns and dead ends |
B |
| Fowler K |
Learning from model failures: challenges in hydrological observations and modelling |
Johnson F, Bennett J, Fowler K, Thyer M, Wasko C, Saco P, Lerat J |
https://doi.org/10.36334/modsim2025.K05.johnson |
https://mssanz.org.au/modsim2025/files/K05.johnson.pdf |
K |
Hydroclimate |
K5 |
When models fail: lessons learned from false starts, wrong turns and dead ends |
F |
| Johnson F |
Learning from model failures: challenges in hydrological observations and modelling |
Johnson F, Bennett J, Fowler K, Thyer M, Wasko C, Saco P, Lerat J |
https://doi.org/10.36334/modsim2025.K05.johnson |
https://mssanz.org.au/modsim2025/files/K05.johnson.pdf |
K |
Hydroclimate |
K5 |
When models fail: lessons learned from false starts, wrong turns and dead ends |
J |
| Lerat J |
Learning from model failures: challenges in hydrological observations and modelling |
Johnson F, Bennett J, Fowler K, Thyer M, Wasko C, Saco P, Lerat J |
https://doi.org/10.36334/modsim2025.K05.johnson |
https://mssanz.org.au/modsim2025/files/K05.johnson.pdf |
K |
Hydroclimate |
K5 |
When models fail: lessons learned from false starts, wrong turns and dead ends |
L |
| Saco P |
Learning from model failures: challenges in hydrological observations and modelling |
Johnson F, Bennett J, Fowler K, Thyer M, Wasko C, Saco P, Lerat J |
https://doi.org/10.36334/modsim2025.K05.johnson |
https://mssanz.org.au/modsim2025/files/K05.johnson.pdf |
K |
Hydroclimate |
K5 |
When models fail: lessons learned from false starts, wrong turns and dead ends |
S |
| Thyer M |
Learning from model failures: challenges in hydrological observations and modelling |
Johnson F, Bennett J, Fowler K, Thyer M, Wasko C, Saco P, Lerat J |
https://doi.org/10.36334/modsim2025.K05.johnson |
https://mssanz.org.au/modsim2025/files/K05.johnson.pdf |
K |
Hydroclimate |
K5 |
When models fail: lessons learned from false starts, wrong turns and dead ends |
T |
| Wasko C |
Learning from model failures: challenges in hydrological observations and modelling |
Johnson F, Bennett J, Fowler K, Thyer M, Wasko C, Saco P, Lerat J |
https://doi.org/10.36334/modsim2025.K05.johnson |
https://mssanz.org.au/modsim2025/files/K05.johnson.pdf |
K |
Hydroclimate |
K5 |
When models fail: lessons learned from false starts, wrong turns and dead ends |
W |
| Graham P |
Least-cost modelling of electricity systems with a high share of weather dependent renewable generation |
Graham P |
https://doi.org/10.36334/modsim2025.E03.graham |
https://mssanz.org.au/modsim2025/files/E03.graham.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
G |
| McCullough DP |
Levelling up: Modelling flood inundation changes in the South Australian River Murray |
McCullough DP |
https://doi.org/10.36334/modsim2025.K08.mccullough |
https://mssanz.org.au/modsim2025/files/K08.mccullough.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
M |
| Battaglia M |
Leveraging participatory system dynamics to coordinate regional net zero transitions in Australia |
Hammond P, Nadeem H, Mueller S, Bruce J, Battaglia M, Hortle R, Linkston L, Johnson L, Eccleston R, Moallemi EA |
https://doi.org/10.36334/modsim2025.I02.hammond |
https://mssanz.org.au/modsim2025/files/I02.hammond.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I2 |
Advancing System Dynamics Modelling: Integrating Emerging Technologies and Participatory Approaches for Enhanced Decision Support in Social Systems |
B |
| Bruce J |
Leveraging participatory system dynamics to coordinate regional net zero transitions in Australia |
Hammond P, Nadeem H, Mueller S, Bruce J, Battaglia M, Hortle R, Linkston L, Johnson L, Eccleston R, Moallemi EA |
https://doi.org/10.36334/modsim2025.I02.hammond |
https://mssanz.org.au/modsim2025/files/I02.hammond.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I2 |
Advancing System Dynamics Modelling: Integrating Emerging Technologies and Participatory Approaches for Enhanced Decision Support in Social Systems |
B |
| Eccleston R |
Leveraging participatory system dynamics to coordinate regional net zero transitions in Australia |
Hammond P, Nadeem H, Mueller S, Bruce J, Battaglia M, Hortle R, Linkston L, Johnson L, Eccleston R, Moallemi EA |
https://doi.org/10.36334/modsim2025.I02.hammond |
https://mssanz.org.au/modsim2025/files/I02.hammond.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I2 |
Advancing System Dynamics Modelling: Integrating Emerging Technologies and Participatory Approaches for Enhanced Decision Support in Social Systems |
E |
| Hammond P |
Leveraging participatory system dynamics to coordinate regional net zero transitions in Australia |
Hammond P, Nadeem H, Mueller S, Bruce J, Battaglia M, Hortle R, Linkston L, Johnson L, Eccleston R, Moallemi EA |
https://doi.org/10.36334/modsim2025.I02.hammond |
https://mssanz.org.au/modsim2025/files/I02.hammond.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I2 |
Advancing System Dynamics Modelling: Integrating Emerging Technologies and Participatory Approaches for Enhanced Decision Support in Social Systems |
H |
| Hortle R |
Leveraging participatory system dynamics to coordinate regional net zero transitions in Australia |
Hammond P, Nadeem H, Mueller S, Bruce J, Battaglia M, Hortle R, Linkston L, Johnson L, Eccleston R, Moallemi EA |
https://doi.org/10.36334/modsim2025.I02.hammond |
https://mssanz.org.au/modsim2025/files/I02.hammond.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I2 |
Advancing System Dynamics Modelling: Integrating Emerging Technologies and Participatory Approaches for Enhanced Decision Support in Social Systems |
H |
| Johnson L |
Leveraging participatory system dynamics to coordinate regional net zero transitions in Australia |
Hammond P, Nadeem H, Mueller S, Bruce J, Battaglia M, Hortle R, Linkston L, Johnson L, Eccleston R, Moallemi EA |
https://doi.org/10.36334/modsim2025.I02.hammond |
https://mssanz.org.au/modsim2025/files/I02.hammond.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I2 |
Advancing System Dynamics Modelling: Integrating Emerging Technologies and Participatory Approaches for Enhanced Decision Support in Social Systems |
J |
| Linkston L |
Leveraging participatory system dynamics to coordinate regional net zero transitions in Australia |
Hammond P, Nadeem H, Mueller S, Bruce J, Battaglia M, Hortle R, Linkston L, Johnson L, Eccleston R, Moallemi EA |
https://doi.org/10.36334/modsim2025.I02.hammond |
https://mssanz.org.au/modsim2025/files/I02.hammond.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I2 |
Advancing System Dynamics Modelling: Integrating Emerging Technologies and Participatory Approaches for Enhanced Decision Support in Social Systems |
L |
| Moallemi EA |
Leveraging participatory system dynamics to coordinate regional net zero transitions in Australia |
Hammond P, Nadeem H, Mueller S, Bruce J, Battaglia M, Hortle R, Linkston L, Johnson L, Eccleston R, Moallemi EA |
https://doi.org/10.36334/modsim2025.I02.hammond |
https://mssanz.org.au/modsim2025/files/I02.hammond.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I2 |
Advancing System Dynamics Modelling: Integrating Emerging Technologies and Participatory Approaches for Enhanced Decision Support in Social Systems |
M |
| Mueller S |
Leveraging participatory system dynamics to coordinate regional net zero transitions in Australia |
Hammond P, Nadeem H, Mueller S, Bruce J, Battaglia M, Hortle R, Linkston L, Johnson L, Eccleston R, Moallemi EA |
https://doi.org/10.36334/modsim2025.I02.hammond |
https://mssanz.org.au/modsim2025/files/I02.hammond.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I2 |
Advancing System Dynamics Modelling: Integrating Emerging Technologies and Participatory Approaches for Enhanced Decision Support in Social Systems |
M |
| Nadeem H |
Leveraging participatory system dynamics to coordinate regional net zero transitions in Australia |
Hammond P, Nadeem H, Mueller S, Bruce J, Battaglia M, Hortle R, Linkston L, Johnson L, Eccleston R, Moallemi EA |
https://doi.org/10.36334/modsim2025.I02.hammond |
https://mssanz.org.au/modsim2025/files/I02.hammond.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I2 |
Advancing System Dynamics Modelling: Integrating Emerging Technologies and Participatory Approaches for Enhanced Decision Support in Social Systems |
N |
| Herckenrath D |
Leveraging petrophysical logs in data-scarce groundwater environments |
Herckenrath D, Shanmugam S, Rojas R, Phillipson K |
https://doi.org/10.36334/modsim2025.K01.herckenrath |
https://mssanz.org.au/modsim2025/files/K01.herckenrath.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
H |
| Phillipson K |
Leveraging petrophysical logs in data-scarce groundwater environments |
Herckenrath D, Shanmugam S, Rojas R, Phillipson K |
https://doi.org/10.36334/modsim2025.K01.herckenrath |
https://mssanz.org.au/modsim2025/files/K01.herckenrath.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
P |
| Rojas R |
Leveraging petrophysical logs in data-scarce groundwater environments |
Herckenrath D, Shanmugam S, Rojas R, Phillipson K |
https://doi.org/10.36334/modsim2025.K01.herckenrath |
https://mssanz.org.au/modsim2025/files/K01.herckenrath.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
R |
| Shanmugam S |
Leveraging petrophysical logs in data-scarce groundwater environments |
Herckenrath D, Shanmugam S, Rojas R, Phillipson K |
https://doi.org/10.36334/modsim2025.K01.herckenrath |
https://mssanz.org.au/modsim2025/files/K01.herckenrath.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
S |
| Armstrong M |
Limitations and best practice for bottom-up climate risk assessments |
Culley S, Armstrong M, John A, Horne A, Mudaliar C, Ren L, Westra S, Maier HR, Bennett B |
https://doi.org/10.36334/modsim2025.J05.culley |
https://mssanz.org.au/modsim2025/files/J05.culley.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
A |
| Bennett B |
Limitations and best practice for bottom-up climate risk assessments |
Culley S, Armstrong M, John A, Horne A, Mudaliar C, Ren L, Westra S, Maier HR, Bennett B |
https://doi.org/10.36334/modsim2025.J05.culley |
https://mssanz.org.au/modsim2025/files/J05.culley.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
B |
| Culley S (Sam) |
Limitations and best practice for bottom-up climate risk assessments |
Culley S, Armstrong M, John A, Horne A, Mudaliar C, Ren L, Westra S, Maier HR, Bennett B |
https://doi.org/10.36334/modsim2025.J05.culley |
https://mssanz.org.au/modsim2025/files/J05.culley.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
C |
| Horne A |
Limitations and best practice for bottom-up climate risk assessments |
Culley S, Armstrong M, John A, Horne A, Mudaliar C, Ren L, Westra S, Maier HR, Bennett B |
https://doi.org/10.36334/modsim2025.J05.culley |
https://mssanz.org.au/modsim2025/files/J05.culley.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
H |
| John A |
Limitations and best practice for bottom-up climate risk assessments |
Culley S, Armstrong M, John A, Horne A, Mudaliar C, Ren L, Westra S, Maier HR, Bennett B |
https://doi.org/10.36334/modsim2025.J05.culley |
https://mssanz.org.au/modsim2025/files/J05.culley.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
J |
| Maier HR |
Limitations and best practice for bottom-up climate risk assessments |
Culley S, Armstrong M, John A, Horne A, Mudaliar C, Ren L, Westra S, Maier HR, Bennett B |
https://doi.org/10.36334/modsim2025.J05.culley |
https://mssanz.org.au/modsim2025/files/J05.culley.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
M |
| Mudaliar C |
Limitations and best practice for bottom-up climate risk assessments |
Culley S, Armstrong M, John A, Horne A, Mudaliar C, Ren L, Westra S, Maier HR, Bennett B |
https://doi.org/10.36334/modsim2025.J05.culley |
https://mssanz.org.au/modsim2025/files/J05.culley.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
M |
| Ren L |
Limitations and best practice for bottom-up climate risk assessments |
Culley S, Armstrong M, John A, Horne A, Mudaliar C, Ren L, Westra S, Maier HR, Bennett B |
https://doi.org/10.36334/modsim2025.J05.culley |
https://mssanz.org.au/modsim2025/files/J05.culley.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
R |
| Westra S |
Limitations and best practice for bottom-up climate risk assessments |
Culley S, Armstrong M, John A, Horne A, Mudaliar C, Ren L, Westra S, Maier HR, Bennett B |
https://doi.org/10.36334/modsim2025.J05.culley |
https://mssanz.org.au/modsim2025/files/J05.culley.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
W |
| de Haan FJ |
LLM-assisted initial problem conceptualization in decision-making under deep uncertainty |
Pei Z, Lipovetzky N, de Haan FJ, Moallemi EA, Rojas‑Arevalo AM |
https://doi.org/10.36334/modsim2025.F10.pei |
https://mssanz.org.au/modsim2025/files/F10.pei.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
d |
| Lipovetzky N |
LLM-assisted initial problem conceptualization in decision-making under deep uncertainty |
Pei Z, Lipovetzky N, de Haan FJ, Moallemi EA, Rojas‑Arevalo AM |
https://doi.org/10.36334/modsim2025.F10.pei |
https://mssanz.org.au/modsim2025/files/F10.pei.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
L |
| Moallemi EA |
LLM-assisted initial problem conceptualization in decision-making under deep uncertainty |
Pei Z, Lipovetzky N, de Haan FJ, Moallemi EA, Rojas‑Arevalo AM |
https://doi.org/10.36334/modsim2025.F10.pei |
https://mssanz.org.au/modsim2025/files/F10.pei.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
M |
| Pei Z |
LLM-assisted initial problem conceptualization in decision-making under deep uncertainty |
Pei Z, Lipovetzky N, de Haan FJ, Moallemi EA, Rojas‑Arevalo AM |
https://doi.org/10.36334/modsim2025.F10.pei |
https://mssanz.org.au/modsim2025/files/F10.pei.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
P |
| Rojas‑Arevalo AM |
LLM-assisted initial problem conceptualization in decision-making under deep uncertainty |
Pei Z, Lipovetzky N, de Haan FJ, Moallemi EA, Rojas‑Arevalo AM |
https://doi.org/10.36334/modsim2025.F10.pei |
https://mssanz.org.au/modsim2025/files/F10.pei.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
R |
| Podsosonnaya M |
Logistic regression model for early detection and prediction of algal blooms in estuarine environments |
Podsosonnaya M, Schreider M, Schreider S |
https://doi.org/10.36334/modsim2025.J11.podsosonnaya |
https://mssanz.org.au/modsim2025/files/J11.podsosonnaya.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
P |
| Schreider M |
Logistic regression model for early detection and prediction of algal blooms in estuarine environments |
Podsosonnaya M, Schreider M, Schreider S |
https://doi.org/10.36334/modsim2025.J11.podsosonnaya |
https://mssanz.org.au/modsim2025/files/J11.podsosonnaya.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
S |
| Schreider S |
Logistic regression model for early detection and prediction of algal blooms in estuarine environments |
Podsosonnaya M, Schreider M, Schreider S |
https://doi.org/10.36334/modsim2025.J11.podsosonnaya |
https://mssanz.org.au/modsim2025/files/J11.podsosonnaya.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
S |
| Boland JW |
Long Short-Term Memory and statistical time series analysis forecast models for renewable energy and prices |
Cirocco LR, Chiera B, Chopin J, Boland JW |
https://doi.org/10.36334/modsim2025.E04.cirocco |
https://mssanz.org.au/modsim2025/files/E04.cirocco.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
B |
| Chiera B |
Long Short-Term Memory and statistical time series analysis forecast models for renewable energy and prices |
Cirocco LR, Chiera B, Chopin J, Boland JW |
https://doi.org/10.36334/modsim2025.E04.cirocco |
https://mssanz.org.au/modsim2025/files/E04.cirocco.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
C |
| Chopin J (Joshua) |
Long Short-Term Memory and statistical time series analysis forecast models for renewable energy and prices |
Cirocco LR, Chiera B, Chopin J, Boland JW |
https://doi.org/10.36334/modsim2025.E04.cirocco |
https://mssanz.org.au/modsim2025/files/E04.cirocco.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
C |
| Cirocco LR |
Long Short-Term Memory and statistical time series analysis forecast models for renewable energy and prices |
Cirocco LR, Chiera B, Chopin J, Boland JW |
https://doi.org/10.36334/modsim2025.E04.cirocco |
https://mssanz.org.au/modsim2025/files/E04.cirocco.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
C |
| Guan H |
Low flow prediction from land surface temperature |
Yang W, Guan H |
https://doi.org/10.36334/modsim2025.K04.yangw |
https://mssanz.org.au/modsim2025/files/K04.yangw.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
G |
| Yang W |
Low flow prediction from land surface temperature |
Yang W, Guan H |
https://doi.org/10.36334/modsim2025.K04.yangw |
https://mssanz.org.au/modsim2025/files/K04.yangw.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
Y |
| Simpson AR |
LSTM-based policy model for minimising pump operational costs in water distribution systems |
Zheng L, Wu W, Simpson AR, Wang Y |
https://doi.org/10.36334/modsim2025.J04.zheng |
https://mssanz.org.au/modsim2025/files/J04.zheng.pdf |
J |
Water resources |
J4 |
Responding to the Challenges and Complexities of Urban Water Management |
S |
| Wang Y (Ye) |
LSTM-based policy model for minimising pump operational costs in water distribution systems |
Zheng L, Wu W, Simpson AR, Wang Y |
https://doi.org/10.36334/modsim2025.J04.zheng |
https://mssanz.org.au/modsim2025/files/J04.zheng.pdf |
J |
Water resources |
J4 |
Responding to the Challenges and Complexities of Urban Water Management |
W |
| Wu W (Wenyan) |
LSTM-based policy model for minimising pump operational costs in water distribution systems |
Zheng L, Wu W, Simpson AR, Wang Y |
https://doi.org/10.36334/modsim2025.J04.zheng |
https://mssanz.org.au/modsim2025/files/J04.zheng.pdf |
J |
Water resources |
J4 |
Responding to the Challenges and Complexities of Urban Water Management |
W |
| Zheng L |
LSTM-based policy model for minimising pump operational costs in water distribution systems |
Zheng L, Wu W, Simpson AR, Wang Y |
https://doi.org/10.36334/modsim2025.J04.zheng |
https://mssanz.org.au/modsim2025/files/J04.zheng.pdf |
J |
Water resources |
J4 |
Responding to the Challenges and Complexities of Urban Water Management |
Z |
| Aeman H |
Machine learning approach to irrigation demand forecasting in the Indus Basin using Google Earth Engine |
Hafeez M, Aeman H, Liaqat UW |
https://doi.org/10.36334/modsim2025.B06.hafeez |
https://mssanz.org.au/modsim2025/files/B06.hafeez.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
A |
| Hafeez M (Mohsin) |
Machine learning approach to irrigation demand forecasting in the Indus Basin using Google Earth Engine |
Hafeez M, Aeman H, Liaqat UW |
https://doi.org/10.36334/modsim2025.B06.hafeez |
https://mssanz.org.au/modsim2025/files/B06.hafeez.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
H |
| Liaqat UW |
Machine learning approach to irrigation demand forecasting in the Indus Basin using Google Earth Engine |
Hafeez M, Aeman H, Liaqat UW |
https://doi.org/10.36334/modsim2025.B06.hafeez |
https://mssanz.org.au/modsim2025/files/B06.hafeez.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
L |
| Baumgartner J |
Machine learning for locust population dynamics and outbreak prediction |
Baumgartner J, Spessa A, Camac J |
https://doi.org/10.36334/modsim2025.F11.baumgartner |
https://mssanz.org.au/modsim2025/files/F11.baumgartner.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
B |
| Camac J |
Machine learning for locust population dynamics and outbreak prediction |
Baumgartner J, Spessa A, Camac J |
https://doi.org/10.36334/modsim2025.F11.baumgartner |
https://mssanz.org.au/modsim2025/files/F11.baumgartner.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
C |
| Spessa A |
Machine learning for locust population dynamics and outbreak prediction |
Baumgartner J, Spessa A, Camac J |
https://doi.org/10.36334/modsim2025.F11.baumgartner |
https://mssanz.org.au/modsim2025/files/F11.baumgartner.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
S |
| Humphries M |
Making sense of heart rate variability: Identifying meaningful metrics for stress and pain prediction |
Lim J, Humphries M, Tuke J, Sanchez R, Klyne D |
https://doi.org/10.36334/modsim2025.A03.lim |
https://mssanz.org.au/modsim2025/files/A03.lim.pdf |
A |
Applied and computational mathematics |
A3 |
Modelling and simulation for trustworthy data science on challenging datasets |
H |
| Klyne D |
Making sense of heart rate variability: Identifying meaningful metrics for stress and pain prediction |
Lim J, Humphries M, Tuke J, Sanchez R, Klyne D |
https://doi.org/10.36334/modsim2025.A03.lim |
https://mssanz.org.au/modsim2025/files/A03.lim.pdf |
A |
Applied and computational mathematics |
A3 |
Modelling and simulation for trustworthy data science on challenging datasets |
K |
| Lim J |
Making sense of heart rate variability: Identifying meaningful metrics for stress and pain prediction |
Lim J, Humphries M, Tuke J, Sanchez R, Klyne D |
https://doi.org/10.36334/modsim2025.A03.lim |
https://mssanz.org.au/modsim2025/files/A03.lim.pdf |
A |
Applied and computational mathematics |
A3 |
Modelling and simulation for trustworthy data science on challenging datasets |
L |
| Sanchez R |
Making sense of heart rate variability: Identifying meaningful metrics for stress and pain prediction |
Lim J, Humphries M, Tuke J, Sanchez R, Klyne D |
https://doi.org/10.36334/modsim2025.A03.lim |
https://mssanz.org.au/modsim2025/files/A03.lim.pdf |
A |
Applied and computational mathematics |
A3 |
Modelling and simulation for trustworthy data science on challenging datasets |
S |
| Tuke J |
Making sense of heart rate variability: Identifying meaningful metrics for stress and pain prediction |
Lim J, Humphries M, Tuke J, Sanchez R, Klyne D |
https://doi.org/10.36334/modsim2025.A03.lim |
https://mssanz.org.au/modsim2025/files/A03.lim.pdf |
A |
Applied and computational mathematics |
A3 |
Modelling and simulation for trustworthy data science on challenging datasets |
T |
| Shu Y (Yucheng) |
MapMate: A Framework Bridging Natural Language Interaction and Map Design Through Large Language Models |
Tang Z, Shu Y, Yue S, Wen Y |
https://doi.org/10.36334/modsim2025.C04.tang |
https://mssanz.org.au/modsim2025/files/C04.tang.pdf |
C |
Computer science and engineering |
C4 |
Open and intelligent modeling and simulation |
S |
| Tang Z (Zihao) |
MapMate: A Framework Bridging Natural Language Interaction and Map Design Through Large Language Models |
Tang Z, Shu Y, Yue S, Wen Y |
https://doi.org/10.36334/modsim2025.C04.tang |
https://mssanz.org.au/modsim2025/files/C04.tang.pdf |
C |
Computer science and engineering |
C4 |
Open and intelligent modeling and simulation |
T |
| Wen Y |
MapMate: A Framework Bridging Natural Language Interaction and Map Design Through Large Language Models |
Tang Z, Shu Y, Yue S, Wen Y |
https://doi.org/10.36334/modsim2025.C04.tang |
https://mssanz.org.au/modsim2025/files/C04.tang.pdf |
C |
Computer science and engineering |
C4 |
Open and intelligent modeling and simulation |
W |
| Yue S |
MapMate: A Framework Bridging Natural Language Interaction and Map Design Through Large Language Models |
Tang Z, Shu Y, Yue S, Wen Y |
https://doi.org/10.36334/modsim2025.C04.tang |
https://mssanz.org.au/modsim2025/files/C04.tang.pdf |
C |
Computer science and engineering |
C4 |
Open and intelligent modeling and simulation |
Y |
| Laffan S |
Mapping and modelling bushfire exposure at the wildland–urban interface in Australia |
Mehnaz N, Sutherland D, Sharples J, Laffan S |
https://doi.org/10.36334/modsim2025.G08.mehnaz |
https://mssanz.org.au/modsim2025/files/G08.mehnaz.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
L |
| Mehnaz N |
Mapping and modelling bushfire exposure at the wildland–urban interface in Australia |
Mehnaz N, Sutherland D, Sharples J, Laffan S |
https://doi.org/10.36334/modsim2025.G08.mehnaz |
https://mssanz.org.au/modsim2025/files/G08.mehnaz.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
M |
| Sharples JJ |
Mapping and modelling bushfire exposure at the wildland–urban interface in Australia |
Mehnaz N, Sutherland D, Sharples J, Laffan S |
https://doi.org/10.36334/modsim2025.G08.mehnaz |
https://mssanz.org.au/modsim2025/files/G08.mehnaz.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
S |
| Sutherland D |
Mapping and modelling bushfire exposure at the wildland–urban interface in Australia |
Mehnaz N, Sutherland D, Sharples J, Laffan S |
https://doi.org/10.36334/modsim2025.G08.mehnaz |
https://mssanz.org.au/modsim2025/files/G08.mehnaz.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
S |
| Bottini G |
Mapping crop area and fertilizer application rates globally for 173 crops |
Tang FHM, Nguyen TH, Bottini G, Conchedda G, Casse L, Obli‑Laryea G, Tubiello FN, Maggi F |
https://doi.org/10.36334/modsim2025.F11.tang |
https://mssanz.org.au/modsim2025/files/F11.tang.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
B |
| Casse L |
Mapping crop area and fertilizer application rates globally for 173 crops |
Tang FHM, Nguyen TH, Bottini G, Conchedda G, Casse L, Obli‑Laryea G, Tubiello FN, Maggi F |
https://doi.org/10.36334/modsim2025.F11.tang |
https://mssanz.org.au/modsim2025/files/F11.tang.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
C |
| Conchedda G |
Mapping crop area and fertilizer application rates globally for 173 crops |
Tang FHM, Nguyen TH, Bottini G, Conchedda G, Casse L, Obli‑Laryea G, Tubiello FN, Maggi F |
https://doi.org/10.36334/modsim2025.F11.tang |
https://mssanz.org.au/modsim2025/files/F11.tang.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
C |
| Maggi F |
Mapping crop area and fertilizer application rates globally for 173 crops |
Tang FHM, Nguyen TH, Bottini G, Conchedda G, Casse L, Obli‑Laryea G, Tubiello FN, Maggi F |
https://doi.org/10.36334/modsim2025.F11.tang |
https://mssanz.org.au/modsim2025/files/F11.tang.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
M |
| Nguyen TH |
Mapping crop area and fertilizer application rates globally for 173 crops |
Tang FHM, Nguyen TH, Bottini G, Conchedda G, Casse L, Obli‑Laryea G, Tubiello FN, Maggi F |
https://doi.org/10.36334/modsim2025.F11.tang |
https://mssanz.org.au/modsim2025/files/F11.tang.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
N |
| Obli‑Laryea G |
Mapping crop area and fertilizer application rates globally for 173 crops |
Tang FHM, Nguyen TH, Bottini G, Conchedda G, Casse L, Obli‑Laryea G, Tubiello FN, Maggi F |
https://doi.org/10.36334/modsim2025.F11.tang |
https://mssanz.org.au/modsim2025/files/F11.tang.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
O |
| Tang FHM |
Mapping crop area and fertilizer application rates globally for 173 crops |
Tang FHM, Nguyen TH, Bottini G, Conchedda G, Casse L, Obli‑Laryea G, Tubiello FN, Maggi F |
https://doi.org/10.36334/modsim2025.F11.tang |
https://mssanz.org.au/modsim2025/files/F11.tang.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
T |
| Tubiello FN |
Mapping crop area and fertilizer application rates globally for 173 crops |
Tang FHM, Nguyen TH, Bottini G, Conchedda G, Casse L, Obli‑Laryea G, Tubiello FN, Maggi F |
https://doi.org/10.36334/modsim2025.F11.tang |
https://mssanz.org.au/modsim2025/files/F11.tang.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
T |
| Guan H |
Mapping groundwater dependent ecosystems and their degradation using selected hydroclimatic windows |
Guan H, Li H |
https://doi.org/10.36334/modsim2025.J10.guan |
https://mssanz.org.au/modsim2025/files/J10.guan.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
G |
| Li H (Huixiang) |
Mapping groundwater dependent ecosystems and their degradation using selected hydroclimatic windows |
Guan H, Li H |
https://doi.org/10.36334/modsim2025.J10.guan |
https://mssanz.org.au/modsim2025/files/J10.guan.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
L |
| Mokany K |
Mapping plant phenological traits at fine resolution continentally by combining process-based modelling and remote sensing |
Yang J, Mokany K |
https://doi.org/10.36334/modsim2025.F12.yang |
https://mssanz.org.au/modsim2025/files/F12.yang.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
M |
| Yang J |
Mapping plant phenological traits at fine resolution continentally by combining process-based modelling and remote sensing |
Yang J, Mokany K |
https://doi.org/10.36334/modsim2025.F12.yang |
https://mssanz.org.au/modsim2025/files/F12.yang.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
Y |
| Cao Y (Yijing) |
Marginal yield recessions can achieve agricultural water savings |
Yang X, Zhang Y, Wang E, Zhang X, Li C, Xu Z, Tang Z, Cao Y |
https://doi.org/10.36334/modsim2025.K03.yang |
https://mssanz.org.au/modsim2025/files/K03.yang.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
C |
| Li C (Congcong) |
Marginal yield recessions can achieve agricultural water savings |
Yang X, Zhang Y, Wang E, Zhang X, Li C, Xu Z, Tang Z, Cao Y |
https://doi.org/10.36334/modsim2025.K03.yang |
https://mssanz.org.au/modsim2025/files/K03.yang.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
L |
| Tang Z (Zixuan) |
Marginal yield recessions can achieve agricultural water savings |
Yang X, Zhang Y, Wang E, Zhang X, Li C, Xu Z, Tang Z, Cao Y |
https://doi.org/10.36334/modsim2025.K03.yang |
https://mssanz.org.au/modsim2025/files/K03.yang.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
T |
| Wang E (Enli) |
Marginal yield recessions can achieve agricultural water savings |
Yang X, Zhang Y, Wang E, Zhang X, Li C, Xu Z, Tang Z, Cao Y |
https://doi.org/10.36334/modsim2025.K03.yang |
https://mssanz.org.au/modsim2025/files/K03.yang.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
W |
| Xu Z (Zhenwu) |
Marginal yield recessions can achieve agricultural water savings |
Yang X, Zhang Y, Wang E, Zhang X, Li C, Xu Z, Tang Z, Cao Y |
https://doi.org/10.36334/modsim2025.K03.yang |
https://mssanz.org.au/modsim2025/files/K03.yang.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
X |
| Yang X (Xuening) |
Marginal yield recessions can achieve agricultural water savings |
Yang X, Zhang Y, Wang E, Zhang X, Li C, Xu Z, Tang Z, Cao Y |
https://doi.org/10.36334/modsim2025.K03.yang |
https://mssanz.org.au/modsim2025/files/K03.yang.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
Y |
| Zhang X (Xuanze) |
Marginal yield recessions can achieve agricultural water savings |
Yang X, Zhang Y, Wang E, Zhang X, Li C, Xu Z, Tang Z, Cao Y |
https://doi.org/10.36334/modsim2025.K03.yang |
https://mssanz.org.au/modsim2025/files/K03.yang.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
Z |
| Zhang Y (Yongqiang) |
Marginal yield recessions can achieve agricultural water savings |
Yang X, Zhang Y, Wang E, Zhang X, Li C, Xu Z, Tang Z, Cao Y |
https://doi.org/10.36334/modsim2025.K03.yang |
https://mssanz.org.au/modsim2025/files/K03.yang.pdf |
K |
Hydroclimate |
K3 |
Advancing Drought Monitoring, Prediction, And Resilience For Sustainable Development |
Z |
| Spillias S |
Marine ecosystem modelling with generative AI (STREAM F KEYNOTE) |
Spillias S |
https://doi.org/10.36334/modsim2025.F10.spillias |
https://mssanz.org.au/modsim2025/files/F10.spillias.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
S |
| Casse L |
Mechanistic modelling of socil organic-inorganic carbon dynamics |
Casse L, Minasny B, Field DJ, McBratney A, Maggi F |
https://doi.org/10.36334/modsim2025.F13.casse |
https://mssanz.org.au/modsim2025/files/F13.casse.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
C |
| Field DJ |
Mechanistic modelling of socil organic-inorganic carbon dynamics |
Casse L, Minasny B, Field DJ, McBratney A, Maggi F |
https://doi.org/10.36334/modsim2025.F13.casse |
https://mssanz.org.au/modsim2025/files/F13.casse.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
F |
| Maggi F |
Mechanistic modelling of socil organic-inorganic carbon dynamics |
Casse L, Minasny B, Field DJ, McBratney A, Maggi F |
https://doi.org/10.36334/modsim2025.F13.casse |
https://mssanz.org.au/modsim2025/files/F13.casse.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
M |
| McBratney A |
Mechanistic modelling of socil organic-inorganic carbon dynamics |
Casse L, Minasny B, Field DJ, McBratney A, Maggi F |
https://doi.org/10.36334/modsim2025.F13.casse |
https://mssanz.org.au/modsim2025/files/F13.casse.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
M |
| Minasny B |
Mechanistic modelling of socil organic-inorganic carbon dynamics |
Casse L, Minasny B, Field DJ, McBratney A, Maggi F |
https://doi.org/10.36334/modsim2025.F13.casse |
https://mssanz.org.au/modsim2025/files/F13.casse.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
M |
| Ashbolt SC |
Melbourne’s water supply modelling information system: Progress update and next steps |
Kularathna MDUP, Vu K, Ashbolt SC |
https://doi.org/10.36334/modsim2025.J04.kularathna |
https://mssanz.org.au/modsim2025/files/J04.kularathna.pdf |
J |
Water resources |
J4 |
Responding to the Challenges and Complexities of Urban Water Management |
A |
| Kularathna MDUP |
Melbourne’s water supply modelling information system: Progress update and next steps |
Kularathna MDUP, Vu K, Ashbolt SC |
https://doi.org/10.36334/modsim2025.J04.kularathna |
https://mssanz.org.au/modsim2025/files/J04.kularathna.pdf |
J |
Water resources |
J4 |
Responding to the Challenges and Complexities of Urban Water Management |
K |
| Vu K |
Melbourne’s water supply modelling information system: Progress update and next steps |
Kularathna MDUP, Vu K, Ashbolt SC |
https://doi.org/10.36334/modsim2025.J04.kularathna |
https://mssanz.org.au/modsim2025/files/J04.kularathna.pdf |
J |
Water resources |
J4 |
Responding to the Challenges and Complexities of Urban Water Management |
V |
| Barnes MA |
Meteorological drought termination: processes and trends |
Holgate CM, Barnes MA, Jin C, Parker TJ |
https://doi.org/10.36334/modsim2025.K07.holgate |
https://mssanz.org.au/modsim2025/files/K07.holgate.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
B |
| Holgate CM |
Meteorological drought termination: processes and trends |
Holgate CM, Barnes MA, Jin C, Parker TJ |
https://doi.org/10.36334/modsim2025.K07.holgate |
https://mssanz.org.au/modsim2025/files/K07.holgate.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
H |
| Jin C |
Meteorological drought termination: processes and trends |
Holgate CM, Barnes MA, Jin C, Parker TJ |
https://doi.org/10.36334/modsim2025.K07.holgate |
https://mssanz.org.au/modsim2025/files/K07.holgate.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
J |
| Parker TJ |
Meteorological drought termination: processes and trends |
Holgate CM, Barnes MA, Jin C, Parker TJ |
https://doi.org/10.36334/modsim2025.K07.holgate |
https://mssanz.org.au/modsim2025/files/K07.holgate.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
P |
| Dennis G |
Minimising ergonomic impact in automated workspaces through reinforcement learning |
Garcia‑Flores R, Dennis G, Smith D, Kandanaarachchi S, Rahman A, Harrison S |
https://doi.org/10.36334/modsim2025.M03.garciaflores |
https://mssanz.org.au/modsim2025/files/M03.garciaflores.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
D |
| Garcia‑Flores R |
Minimising ergonomic impact in automated workspaces through reinforcement learning |
Garcia‑Flores R, Dennis G, Smith D, Kandanaarachchi S, Rahman A, Harrison S |
https://doi.org/10.36334/modsim2025.M03.garciaflores |
https://mssanz.org.au/modsim2025/files/M03.garciaflores.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
G |
| Harrison S |
Minimising ergonomic impact in automated workspaces through reinforcement learning |
Garcia‑Flores R, Dennis G, Smith D, Kandanaarachchi S, Rahman A, Harrison S |
https://doi.org/10.36334/modsim2025.M03.garciaflores |
https://mssanz.org.au/modsim2025/files/M03.garciaflores.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
H |
| Kandanaarachchi S |
Minimising ergonomic impact in automated workspaces through reinforcement learning |
Garcia‑Flores R, Dennis G, Smith D, Kandanaarachchi S, Rahman A, Harrison S |
https://doi.org/10.36334/modsim2025.M03.garciaflores |
https://mssanz.org.au/modsim2025/files/M03.garciaflores.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
K |
| Rahman A |
Minimising ergonomic impact in automated workspaces through reinforcement learning |
Garcia‑Flores R, Dennis G, Smith D, Kandanaarachchi S, Rahman A, Harrison S |
https://doi.org/10.36334/modsim2025.M03.garciaflores |
https://mssanz.org.au/modsim2025/files/M03.garciaflores.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
R |
| Smith D |
Minimising ergonomic impact in automated workspaces through reinforcement learning |
Garcia‑Flores R, Dennis G, Smith D, Kandanaarachchi S, Rahman A, Harrison S |
https://doi.org/10.36334/modsim2025.M03.garciaflores |
https://mssanz.org.au/modsim2025/files/M03.garciaflores.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
S |
| Bennett JC |
Modelling buddy - making large language models competent assistants in environmental modelling |
Perraud JM, Freebairn AC, Bennett JC, Robertson DE |
https://doi.org/10.36334/modsim2025.F10.perraud |
https://mssanz.org.au/modsim2025/files/F10.perraud.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
B |
| Freebairn AC |
Modelling buddy - making large language models competent assistants in environmental modelling |
Perraud JM, Freebairn AC, Bennett JC, Robertson DE |
https://doi.org/10.36334/modsim2025.F10.perraud |
https://mssanz.org.au/modsim2025/files/F10.perraud.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
F |
| Perraud JM |
Modelling buddy - making large language models competent assistants in environmental modelling |
Perraud JM, Freebairn AC, Bennett JC, Robertson DE |
https://doi.org/10.36334/modsim2025.F10.perraud |
https://mssanz.org.au/modsim2025/files/F10.perraud.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
P |
| Robertson DE |
Modelling buddy - making large language models competent assistants in environmental modelling |
Perraud JM, Freebairn AC, Bennett JC, Robertson DE |
https://doi.org/10.36334/modsim2025.F10.perraud |
https://mssanz.org.au/modsim2025/files/F10.perraud.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
R |
| Eccles R |
Modelling changes in extreme rainfall for Australia |
Wasko C, Jayaweera L, Nathan R, Eccles R, Syktus J |
https://doi.org/10.36334/modsim2025.K07.wasko |
https://mssanz.org.au/modsim2025/files/K07.wasko.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
E |
| Jayaweera L |
Modelling changes in extreme rainfall for Australia |
Wasko C, Jayaweera L, Nathan R, Eccles R, Syktus J |
https://doi.org/10.36334/modsim2025.K07.wasko |
https://mssanz.org.au/modsim2025/files/K07.wasko.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
J |
| Nathan R |
Modelling changes in extreme rainfall for Australia |
Wasko C, Jayaweera L, Nathan R, Eccles R, Syktus J |
https://doi.org/10.36334/modsim2025.K07.wasko |
https://mssanz.org.au/modsim2025/files/K07.wasko.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
N |
| Syktus J |
Modelling changes in extreme rainfall for Australia |
Wasko C, Jayaweera L, Nathan R, Eccles R, Syktus J |
https://doi.org/10.36334/modsim2025.K07.wasko |
https://mssanz.org.au/modsim2025/files/K07.wasko.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
S |
| Wasko C |
Modelling changes in extreme rainfall for Australia |
Wasko C, Jayaweera L, Nathan R, Eccles R, Syktus J |
https://doi.org/10.36334/modsim2025.K07.wasko |
https://mssanz.org.au/modsim2025/files/K07.wasko.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
W |
| Hoang GB |
Modelling complex systems to analyse social media for belief revision |
Hoang GB |
https://doi.org/10.36334/modsim2025.A03.hoang |
https://mssanz.org.au/modsim2025/files/A03.hoang.pdf |
A |
Applied and computational mathematics |
A3 |
Modelling and simulation for trustworthy data science on challenging datasets |
H |
| Chamberlain T |
Modelling dissolved inorganic nitrogen losses from the Queensland sugarcane industry |
Chamberlain T, Shepherd N, Noory H, Donaldson S |
https://doi.org/10.36334/modsim2025.L04.chamberlain |
https://mssanz.org.au/modsim2025/files/L04.chamberlain.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
C |
| Donaldson S |
Modelling dissolved inorganic nitrogen losses from the Queensland sugarcane industry |
Chamberlain T, Shepherd N, Noory H, Donaldson S |
https://doi.org/10.36334/modsim2025.L04.chamberlain |
https://mssanz.org.au/modsim2025/files/L04.chamberlain.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
D |
| Noory H |
Modelling dissolved inorganic nitrogen losses from the Queensland sugarcane industry |
Chamberlain T, Shepherd N, Noory H, Donaldson S |
https://doi.org/10.36334/modsim2025.L04.chamberlain |
https://mssanz.org.au/modsim2025/files/L04.chamberlain.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
N |
| Shepherd N |
Modelling dissolved inorganic nitrogen losses from the Queensland sugarcane industry |
Chamberlain T, Shepherd N, Noory H, Donaldson S |
https://doi.org/10.36334/modsim2025.L04.chamberlain |
https://mssanz.org.au/modsim2025/files/L04.chamberlain.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
S |
| Beletse Y |
Modelling frost and heat impact on yields: challenges and perspectives |
Richetti J, Sadras V, He D, Leske B, Hu P, Beletse Y, Cossani C M, Nguyen H, Zheng B, Deery D, Dreccer F, Whish J, Lilley J |
https://doi.org/10.36334/modsim2025.B02.richettij |
https://mssanz.org.au/modsim2025/files/B02.richettij.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
B |
| Cossani CM |
Modelling frost and heat impact on yields: challenges and perspectives |
Richetti J, Sadras V, He D, Leske B, Hu P, Beletse Y, Cossani C M, Nguyen H, Zheng B, Deery D, Dreccer F, Whish J, Lilley J |
https://doi.org/10.36334/modsim2025.B02.richettij |
https://mssanz.org.au/modsim2025/files/B02.richettij.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
C |
| Deery D |
Modelling frost and heat impact on yields: challenges and perspectives |
Richetti J, Sadras V, He D, Leske B, Hu P, Beletse Y, Cossani C M, Nguyen H, Zheng B, Deery D, Dreccer F, Whish J, Lilley J |
https://doi.org/10.36334/modsim2025.B02.richettij |
https://mssanz.org.au/modsim2025/files/B02.richettij.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
D |
| Dreccer F |
Modelling frost and heat impact on yields: challenges and perspectives |
Richetti J, Sadras V, He D, Leske B, Hu P, Beletse Y, Cossani C M, Nguyen H, Zheng B, Deery D, Dreccer F, Whish J, Lilley J |
https://doi.org/10.36334/modsim2025.B02.richettij |
https://mssanz.org.au/modsim2025/files/B02.richettij.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
D |
| He D (Di) |
Modelling frost and heat impact on yields: challenges and perspectives |
Richetti J, Sadras V, He D, Leske B, Hu P, Beletse Y, Cossani C M, Nguyen H, Zheng B, Deery D, Dreccer F, Whish J, Lilley J |
https://doi.org/10.36334/modsim2025.B02.richettij |
https://mssanz.org.au/modsim2025/files/B02.richettij.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Hu P (Pengcheng) |
Modelling frost and heat impact on yields: challenges and perspectives |
Richetti J, Sadras V, He D, Leske B, Hu P, Beletse Y, Cossani C M, Nguyen H, Zheng B, Deery D, Dreccer F, Whish J, Lilley J |
https://doi.org/10.36334/modsim2025.B02.richettij |
https://mssanz.org.au/modsim2025/files/B02.richettij.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Leske B |
Modelling frost and heat impact on yields: challenges and perspectives |
Richetti J, Sadras V, He D, Leske B, Hu P, Beletse Y, Cossani C M, Nguyen H, Zheng B, Deery D, Dreccer F, Whish J, Lilley J |
https://doi.org/10.36334/modsim2025.B02.richettij |
https://mssanz.org.au/modsim2025/files/B02.richettij.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
L |
| Lilley J |
Modelling frost and heat impact on yields: challenges and perspectives |
Richetti J, Sadras V, He D, Leske B, Hu P, Beletse Y, Cossani C M, Nguyen H, Zheng B, Deery D, Dreccer F, Whish J, Lilley J |
https://doi.org/10.36334/modsim2025.B02.richettij |
https://mssanz.org.au/modsim2025/files/B02.richettij.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
L |
| Nguyen H (Ha) |
Modelling frost and heat impact on yields: challenges and perspectives |
Richetti J, Sadras V, He D, Leske B, Hu P, Beletse Y, Cossani C M, Nguyen H, Zheng B, Deery D, Dreccer F, Whish J, Lilley J |
https://doi.org/10.36334/modsim2025.B02.richettij |
https://mssanz.org.au/modsim2025/files/B02.richettij.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
N |
| Richetti J |
Modelling frost and heat impact on yields: challenges and perspectives |
Richetti J, Sadras V, He D, Leske B, Hu P, Beletse Y, Cossani C M, Nguyen H, Zheng B, Deery D, Dreccer F, Whish J, Lilley J |
https://doi.org/10.36334/modsim2025.B02.richettij |
https://mssanz.org.au/modsim2025/files/B02.richettij.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
R |
| Sadras V |
Modelling frost and heat impact on yields: challenges and perspectives |
Richetti J, Sadras V, He D, Leske B, Hu P, Beletse Y, Cossani C M, Nguyen H, Zheng B, Deery D, Dreccer F, Whish J, Lilley J |
https://doi.org/10.36334/modsim2025.B02.richettij |
https://mssanz.org.au/modsim2025/files/B02.richettij.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
S |
| Whish J |
Modelling frost and heat impact on yields: challenges and perspectives |
Richetti J, Sadras V, He D, Leske B, Hu P, Beletse Y, Cossani C M, Nguyen H, Zheng B, Deery D, Dreccer F, Whish J, Lilley J |
https://doi.org/10.36334/modsim2025.B02.richettij |
https://mssanz.org.au/modsim2025/files/B02.richettij.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
W |
| Zheng B (Bangyou) |
Modelling frost and heat impact on yields: challenges and perspectives |
Richetti J, Sadras V, He D, Leske B, Hu P, Beletse Y, Cossani C M, Nguyen H, Zheng B, Deery D, Dreccer F, Whish J, Lilley J |
https://doi.org/10.36334/modsim2025.B02.richettij |
https://mssanz.org.au/modsim2025/files/B02.richettij.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
Z |
| Halog A |
Modelling green hydrogen for a fairer, cleaner Australia: The role of digital twins and circular economy |
Kark‑Levin Y, Halog A |
https://doi.org/10.36334/modsim2025.E03.karklevin |
https://mssanz.org.au/modsim2025/files/E03.karklevin.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
H |
| Kark‑Levin Y |
Modelling green hydrogen for a fairer, cleaner Australia: The role of digital twins and circular economy |
Kark‑Levin Y, Halog A |
https://doi.org/10.36334/modsim2025.E03.karklevin |
https://mssanz.org.au/modsim2025/files/E03.karklevin.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
K |
| Bell LW |
Modelling greenhouse gas emissions in mixed crop–livestock farming systems |
Jayasinghe P, Bell LW, Mayberry D, Sevenster M, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B05.jayasinghe |
https://mssanz.org.au/modsim2025/files/B05.jayasinghe.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
B |
| Jayasinghe P |
Modelling greenhouse gas emissions in mixed crop–livestock farming systems |
Jayasinghe P, Bell LW, Mayberry D, Sevenster M, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B05.jayasinghe |
https://mssanz.org.au/modsim2025/files/B05.jayasinghe.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
J |
| Mayberry D |
Modelling greenhouse gas emissions in mixed crop–livestock farming systems |
Jayasinghe P, Bell LW, Mayberry D, Sevenster M, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B05.jayasinghe |
https://mssanz.org.au/modsim2025/files/B05.jayasinghe.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
M |
| Sevenster M |
Modelling greenhouse gas emissions in mixed crop–livestock farming systems |
Jayasinghe P, Bell LW, Mayberry D, Sevenster M, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B05.jayasinghe |
https://mssanz.org.au/modsim2025/files/B05.jayasinghe.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
S |
| Thorburn PJ |
Modelling greenhouse gas emissions in mixed crop–livestock farming systems |
Jayasinghe P, Bell LW, Mayberry D, Sevenster M, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B05.jayasinghe |
https://mssanz.org.au/modsim2025/files/B05.jayasinghe.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
T |
| Das Bhowmik R |
Modelling heteroscedasticity and detecting shifts in rating curves for reliable streamflow records |
Kona SV, Das Bhowmik R, Peel M, Western A |
https://doi.org/10.36334/modsim2025.J02.kona |
https://mssanz.org.au/modsim2025/files/J02.kona.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
D |
| Kona SV |
Modelling heteroscedasticity and detecting shifts in rating curves for reliable streamflow records |
Kona SV, Das Bhowmik R, Peel M, Western A |
https://doi.org/10.36334/modsim2025.J02.kona |
https://mssanz.org.au/modsim2025/files/J02.kona.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
K |
| Peel MC |
Modelling heteroscedasticity and detecting shifts in rating curves for reliable streamflow records |
Kona SV, Das Bhowmik R, Peel M, Western A |
https://doi.org/10.36334/modsim2025.J02.kona |
https://mssanz.org.au/modsim2025/files/J02.kona.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
P |
| Western A |
Modelling heteroscedasticity and detecting shifts in rating curves for reliable streamflow records |
Kona SV, Das Bhowmik R, Peel M, Western A |
https://doi.org/10.36334/modsim2025.J02.kona |
https://mssanz.org.au/modsim2025/files/J02.kona.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
W |
| Raveendran N |
Modelling insurance losses from Australian bushfires |
Sofronova K, Raveendran N |
https://doi.org/10.36334/modsim2025.A04.sofronova |
https://mssanz.org.au/modsim2025/files/A04.sofronova.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
R |
| Sofronova K |
Modelling insurance losses from Australian bushfires |
Sofronova K, Raveendran N |
https://doi.org/10.36334/modsim2025.A04.sofronova |
https://mssanz.org.au/modsim2025/files/A04.sofronova.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
S |
| Chenu K |
Modelling limiting transpiration under high evaporative demand to improve wheat productivity in dry environments |
Chenu K, Collins B |
https://doi.org/10.36334/modsim2025.B02.chenu |
https://mssanz.org.au/modsim2025/files/B02.chenu.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
C |
| Collins B |
Modelling limiting transpiration under high evaporative demand to improve wheat productivity in dry environments |
Chenu K, Collins B |
https://doi.org/10.36334/modsim2025.B02.chenu |
https://mssanz.org.au/modsim2025/files/B02.chenu.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
C |
| Liedloff A |
Modelling livestock systems: bottom-up, top-down, or a meeting in the middle |
Liedloff A, Snow V |
https://doi.org/10.36334/modsim2025.B01.liedloff |
https://mssanz.org.au/modsim2025/files/B01.liedloff.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
L |
| Snow V |
Modelling livestock systems: bottom-up, top-down, or a meeting in the middle |
Liedloff A, Snow V |
https://doi.org/10.36334/modsim2025.B01.liedloff |
https://mssanz.org.au/modsim2025/files/B01.liedloff.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
S |
| Kev D |
Modelling long distance gravity flow channel design and alignment |
Seo L, Petheram C, Kev D, Read A |
https://doi.org/10.36334/modsim2025.J09.seo |
https://mssanz.org.au/modsim2025/files/J09.seo.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
K |
| Petheram C |
Modelling long distance gravity flow channel design and alignment |
Seo L, Petheram C, Kev D, Read A |
https://doi.org/10.36334/modsim2025.J09.seo |
https://mssanz.org.au/modsim2025/files/J09.seo.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
P |
| Read A |
Modelling long distance gravity flow channel design and alignment |
Seo L, Petheram C, Kev D, Read A |
https://doi.org/10.36334/modsim2025.J09.seo |
https://mssanz.org.au/modsim2025/files/J09.seo.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
R |
| Seo L |
Modelling long distance gravity flow channel design and alignment |
Seo L, Petheram C, Kev D, Read A |
https://doi.org/10.36334/modsim2025.J09.seo |
https://mssanz.org.au/modsim2025/files/J09.seo.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
S |
| Davies P |
Modelling mercury transport in legacy mining catchments in Victoria, Australia |
Kyaw Kyaw A, Lintern A, Tang FHM, Schneider L, Lawrence S, Davies P |
https://doi.org/10.36334/modsim2025.L01.kyaw |
https://mssanz.org.au/modsim2025/files/L01.kyaw.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
D |
| Kyaw Kyaw A |
Modelling mercury transport in legacy mining catchments in Victoria, Australia |
Kyaw Kyaw A, Lintern A, Tang FHM, Schneider L, Lawrence S, Davies P |
https://doi.org/10.36334/modsim2025.L01.kyaw |
https://mssanz.org.au/modsim2025/files/L01.kyaw.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
K |
| Lawrence S |
Modelling mercury transport in legacy mining catchments in Victoria, Australia |
Kyaw Kyaw A, Lintern A, Tang FHM, Schneider L, Lawrence S, Davies P |
https://doi.org/10.36334/modsim2025.L01.kyaw |
https://mssanz.org.au/modsim2025/files/L01.kyaw.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
L |
| Lintern A |
Modelling mercury transport in legacy mining catchments in Victoria, Australia |
Kyaw Kyaw A, Lintern A, Tang FHM, Schneider L, Lawrence S, Davies P |
https://doi.org/10.36334/modsim2025.L01.kyaw |
https://mssanz.org.au/modsim2025/files/L01.kyaw.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
L |
| Schneider L |
Modelling mercury transport in legacy mining catchments in Victoria, Australia |
Kyaw Kyaw A, Lintern A, Tang FHM, Schneider L, Lawrence S, Davies P |
https://doi.org/10.36334/modsim2025.L01.kyaw |
https://mssanz.org.au/modsim2025/files/L01.kyaw.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
S |
| Tang FHM |
Modelling mercury transport in legacy mining catchments in Victoria, Australia |
Kyaw Kyaw A, Lintern A, Tang FHM, Schneider L, Lawrence S, Davies P |
https://doi.org/10.36334/modsim2025.L01.kyaw |
https://mssanz.org.au/modsim2025/files/L01.kyaw.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
T |
| Grace W |
Modelling microgrids |
Grace W |
https://doi.org/10.36334/modsim2025.E05.grace |
https://mssanz.org.au/modsim2025/files/E05.grace.pdf |
E |
Energy, integrated infrastructure and urban planning |
E5 |
The Role of Microgrids in Building Resilient, Low-Carbon Communities |
G |
| Awad J |
Modelling monochloramine decay and the impact of zinc in a simulated drinking water distribution system |
Kulkarni V, Awad J, van Leeuwen JA |
https://doi.org/10.36334/modsim2025.L03.kulkarni |
https://mssanz.org.au/modsim2025/files/L03.kulkarni.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
A |
| Kulkarni V |
Modelling monochloramine decay and the impact of zinc in a simulated drinking water distribution system |
Kulkarni V, Awad J, van Leeuwen JA |
https://doi.org/10.36334/modsim2025.L03.kulkarni |
https://mssanz.org.au/modsim2025/files/L03.kulkarni.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
K |
| van Leeuwen JA |
Modelling monochloramine decay and the impact of zinc in a simulated drinking water distribution system |
Kulkarni V, Awad J, van Leeuwen JA |
https://doi.org/10.36334/modsim2025.L03.kulkarni |
https://mssanz.org.au/modsim2025/files/L03.kulkarni.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
v |
| Brennan E |
Modelling of environmental water holders’ behaviour: A risk-based approach |
Lee J, Brennan E, Korn A |
https://doi.org/10.36334/modsim2025.J08.lee |
https://mssanz.org.au/modsim2025/files/J08.lee.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
B |
| Korn A |
Modelling of environmental water holders’ behaviour: A risk-based approach |
Lee J, Brennan E, Korn A |
https://doi.org/10.36334/modsim2025.J08.lee |
https://mssanz.org.au/modsim2025/files/J08.lee.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
K |
| Lee J |
Modelling of environmental water holders’ behaviour: A risk-based approach |
Lee J, Brennan E, Korn A |
https://doi.org/10.36334/modsim2025.J08.lee |
https://mssanz.org.au/modsim2025/files/J08.lee.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
L |
| Hu X |
Modelling of soil nitrogen dynamics in a smart-irrigated maize field in Newry, Victoria |
Hu X, Tang FHM, Walker JP, Pasut C, Lintern A |
https://doi.org/10.36334/modsim2025.B03.hu |
https://mssanz.org.au/modsim2025/files/B03.hu.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
H |
| Lintern A |
Modelling of soil nitrogen dynamics in a smart-irrigated maize field in Newry, Victoria |
Hu X, Tang FHM, Walker JP, Pasut C, Lintern A |
https://doi.org/10.36334/modsim2025.B03.hu |
https://mssanz.org.au/modsim2025/files/B03.hu.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
L |
| Pasut C |
Modelling of soil nitrogen dynamics in a smart-irrigated maize field in Newry, Victoria |
Hu X, Tang FHM, Walker JP, Pasut C, Lintern A |
https://doi.org/10.36334/modsim2025.B03.hu |
https://mssanz.org.au/modsim2025/files/B03.hu.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
P |
| Tang FHM |
Modelling of soil nitrogen dynamics in a smart-irrigated maize field in Newry, Victoria |
Hu X, Tang FHM, Walker JP, Pasut C, Lintern A |
https://doi.org/10.36334/modsim2025.B03.hu |
https://mssanz.org.au/modsim2025/files/B03.hu.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
T |
| Walker JP |
Modelling of soil nitrogen dynamics in a smart-irrigated maize field in Newry, Victoria |
Hu X, Tang FHM, Walker JP, Pasut C, Lintern A |
https://doi.org/10.36334/modsim2025.B03.hu |
https://mssanz.org.au/modsim2025/files/B03.hu.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
W |
| Ahammed F |
Modelling of stormwater drainage systems using RCP 8.5 climate change scenario |
Ahammed F |
https://doi.org/10.36334/modsim2025.J08.ahammed |
https://mssanz.org.au/modsim2025/files/J08.ahammed.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
A |
| Brown H (Hamish) |
Modelling orchard systems in APSIM |
Brown H, Khaembah E, Yang X, Holzworth D, Huth N, Cichota R, Sharp J, Reeves S |
https://doi.org/10.36334/modsim2025.B02.brown |
https://mssanz.org.au/modsim2025/files/B02.brown.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
B |
| Cichota R |
Modelling orchard systems in APSIM |
Brown H, Khaembah E, Yang X, Holzworth D, Huth N, Cichota R, Sharp J, Reeves S |
https://doi.org/10.36334/modsim2025.B02.brown |
https://mssanz.org.au/modsim2025/files/B02.brown.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
C |
| Holzworth D |
Modelling orchard systems in APSIM |
Brown H, Khaembah E, Yang X, Holzworth D, Huth N, Cichota R, Sharp J, Reeves S |
https://doi.org/10.36334/modsim2025.B02.brown |
https://mssanz.org.au/modsim2025/files/B02.brown.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Huth N |
Modelling orchard systems in APSIM |
Brown H, Khaembah E, Yang X, Holzworth D, Huth N, Cichota R, Sharp J, Reeves S |
https://doi.org/10.36334/modsim2025.B02.brown |
https://mssanz.org.au/modsim2025/files/B02.brown.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Khaembah E |
Modelling orchard systems in APSIM |
Brown H, Khaembah E, Yang X, Holzworth D, Huth N, Cichota R, Sharp J, Reeves S |
https://doi.org/10.36334/modsim2025.B02.brown |
https://mssanz.org.au/modsim2025/files/B02.brown.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
K |
| Reeves S |
Modelling orchard systems in APSIM |
Brown H, Khaembah E, Yang X, Holzworth D, Huth N, Cichota R, Sharp J, Reeves S |
https://doi.org/10.36334/modsim2025.B02.brown |
https://mssanz.org.au/modsim2025/files/B02.brown.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
R |
| Sharp J |
Modelling orchard systems in APSIM |
Brown H, Khaembah E, Yang X, Holzworth D, Huth N, Cichota R, Sharp J, Reeves S |
https://doi.org/10.36334/modsim2025.B02.brown |
https://mssanz.org.au/modsim2025/files/B02.brown.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
S |
| Yang X |
Modelling orchard systems in APSIM |
Brown H, Khaembah E, Yang X, Holzworth D, Huth N, Cichota R, Sharp J, Reeves S |
https://doi.org/10.36334/modsim2025.B02.brown |
https://mssanz.org.au/modsim2025/files/B02.brown.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
Y |
| Hock K |
Modelling performance of uncrewed autonomous system swarms against directed energy weapon systems |
Hock K, Weinberg GV |
https://doi.org/10.36334/modsim2025.M02.hock |
https://mssanz.org.au/modsim2025/files/M02.hock.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
H |
| Weinberg GV |
Modelling performance of uncrewed autonomous system swarms against directed energy weapon systems |
Hock K, Weinberg GV |
https://doi.org/10.36334/modsim2025.M02.hock |
https://mssanz.org.au/modsim2025/files/M02.hock.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
W |
| Armour B |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
A |
| Asanopoulos C |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
A |
| Brown G |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
B |
| Crawford D |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
C |
| De Antoni Migliorati M |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
D |
| Farrell M |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
F |
| Garrard M |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
G |
| Hoyle F |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
H |
| Karunaratne S |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
K |
| Lauerwald R |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
L |
| Li M |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
L |
| Massad RS |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
M |
| McCaskill M |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
M |
| Moreton R |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
M |
| O’Keeffe T |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
O |
| Pasut C |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
P |
| Polain K |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
P |
| Reeves S |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
R |
| Schapel A |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
S |
| Wilson B |
Modelling soil organic carbon change: the role of climate, soil, land-management, and carbon input in Australian farming systems |
Pasut C, Li M, Armour B, Asanopoulos C, Brown G, Crawford D, De Antoni Migliorati M, Lauerwald R, Garrard M, Massad RS, Hoyle F, McCaskill M, Moreton R, O’Keeffe T, Polain K, Schapel A, Reeves S, Wilson B, Farrell M, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.pasut |
https://mssanz.org.au/modsim2025/files/F13.pasut.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
W |
| Kean J |
Modelling spread of invasive organisms as part of a New Zealand Biosecurity Risk Evaluation Framework |
Sharp J, Turner R, Kean J, Phillips C |
https://doi.org/10.36334/modsim2025.F05.sharp |
https://mssanz.org.au/modsim2025/files/F05.sharp.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
K |
| Phillips C |
Modelling spread of invasive organisms as part of a New Zealand Biosecurity Risk Evaluation Framework |
Sharp J, Turner R, Kean J, Phillips C |
https://doi.org/10.36334/modsim2025.F05.sharp |
https://mssanz.org.au/modsim2025/files/F05.sharp.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
P |
| Sharp J |
Modelling spread of invasive organisms as part of a New Zealand Biosecurity Risk Evaluation Framework |
Sharp J, Turner R, Kean J, Phillips C |
https://doi.org/10.36334/modsim2025.F05.sharp |
https://mssanz.org.au/modsim2025/files/F05.sharp.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
S |
| Turner R |
Modelling spread of invasive organisms as part of a New Zealand Biosecurity Risk Evaluation Framework |
Sharp J, Turner R, Kean J, Phillips C |
https://doi.org/10.36334/modsim2025.F05.sharp |
https://mssanz.org.au/modsim2025/files/F05.sharp.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
T |
| Davidson EC |
Modelling the closed loop between a personalised recommender system and users' opinion dynamics |
Davidson EC, Ye M |
https://doi.org/10.36334/modsim2025.I03.davidson |
https://mssanz.org.au/modsim2025/files/I03.davidson.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
D |
| Ye M |
Modelling the closed loop between a personalised recommender system and users' opinion dynamics |
Davidson EC, Ye M |
https://doi.org/10.36334/modsim2025.I03.davidson |
https://mssanz.org.au/modsim2025/files/I03.davidson.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I3 |
Agent-based and data-driven modelling of complex social systems in public information environments |
Y |
| Anese J |
Modelling the cost and viability of brackish groundwater desalination for agriculture in the Murray–Darling Basin |
Reeve P, Anese J, Mullins B, Wallis I, Batelaan O, Fallowfield H, Maier H, Westra S, Walton K, Watt E, Graetz D, Leonard M |
https://doi.org/10.36334/modsim2025.K01.reeve |
https://mssanz.org.au/modsim2025/files/K01.reeve.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
A |
| Batelaan O |
Modelling the cost and viability of brackish groundwater desalination for agriculture in the Murray–Darling Basin |
Reeve P, Anese J, Mullins B, Wallis I, Batelaan O, Fallowfield H, Maier H, Westra S, Walton K, Watt E, Graetz D, Leonard M |
https://doi.org/10.36334/modsim2025.K01.reeve |
https://mssanz.org.au/modsim2025/files/K01.reeve.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
B |
| Fallowfield H |
Modelling the cost and viability of brackish groundwater desalination for agriculture in the Murray–Darling Basin |
Reeve P, Anese J, Mullins B, Wallis I, Batelaan O, Fallowfield H, Maier H, Westra S, Walton K, Watt E, Graetz D, Leonard M |
https://doi.org/10.36334/modsim2025.K01.reeve |
https://mssanz.org.au/modsim2025/files/K01.reeve.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
F |
| Graetz D |
Modelling the cost and viability of brackish groundwater desalination for agriculture in the Murray–Darling Basin |
Reeve P, Anese J, Mullins B, Wallis I, Batelaan O, Fallowfield H, Maier H, Westra S, Walton K, Watt E, Graetz D, Leonard M |
https://doi.org/10.36334/modsim2025.K01.reeve |
https://mssanz.org.au/modsim2025/files/K01.reeve.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
G |
| Leonard M (Michael) |
Modelling the cost and viability of brackish groundwater desalination for agriculture in the Murray–Darling Basin |
Reeve P, Anese J, Mullins B, Wallis I, Batelaan O, Fallowfield H, Maier H, Westra S, Walton K, Watt E, Graetz D, Leonard M |
https://doi.org/10.36334/modsim2025.K01.reeve |
https://mssanz.org.au/modsim2025/files/K01.reeve.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
L |
| Maier HR |
Modelling the cost and viability of brackish groundwater desalination for agriculture in the Murray–Darling Basin |
Reeve P, Anese J, Mullins B, Wallis I, Batelaan O, Fallowfield H, Maier H, Westra S, Walton K, Watt E, Graetz D, Leonard M |
https://doi.org/10.36334/modsim2025.K01.reeve |
https://mssanz.org.au/modsim2025/files/K01.reeve.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
M |
| Mullins B |
Modelling the cost and viability of brackish groundwater desalination for agriculture in the Murray–Darling Basin |
Reeve P, Anese J, Mullins B, Wallis I, Batelaan O, Fallowfield H, Maier H, Westra S, Walton K, Watt E, Graetz D, Leonard M |
https://doi.org/10.36334/modsim2025.K01.reeve |
https://mssanz.org.au/modsim2025/files/K01.reeve.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
M |
| Reeve P |
Modelling the cost and viability of brackish groundwater desalination for agriculture in the Murray–Darling Basin |
Reeve P, Anese J, Mullins B, Wallis I, Batelaan O, Fallowfield H, Maier H, Westra S, Walton K, Watt E, Graetz D, Leonard M |
https://doi.org/10.36334/modsim2025.K01.reeve |
https://mssanz.org.au/modsim2025/files/K01.reeve.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
R |
| Wallis I |
Modelling the cost and viability of brackish groundwater desalination for agriculture in the Murray–Darling Basin |
Reeve P, Anese J, Mullins B, Wallis I, Batelaan O, Fallowfield H, Maier H, Westra S, Walton K, Watt E, Graetz D, Leonard M |
https://doi.org/10.36334/modsim2025.K01.reeve |
https://mssanz.org.au/modsim2025/files/K01.reeve.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
W |
| Walton K |
Modelling the cost and viability of brackish groundwater desalination for agriculture in the Murray–Darling Basin |
Reeve P, Anese J, Mullins B, Wallis I, Batelaan O, Fallowfield H, Maier H, Westra S, Walton K, Watt E, Graetz D, Leonard M |
https://doi.org/10.36334/modsim2025.K01.reeve |
https://mssanz.org.au/modsim2025/files/K01.reeve.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
W |
| Watt E |
Modelling the cost and viability of brackish groundwater desalination for agriculture in the Murray–Darling Basin |
Reeve P, Anese J, Mullins B, Wallis I, Batelaan O, Fallowfield H, Maier H, Westra S, Walton K, Watt E, Graetz D, Leonard M |
https://doi.org/10.36334/modsim2025.K01.reeve |
https://mssanz.org.au/modsim2025/files/K01.reeve.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
W |
| Westra S |
Modelling the cost and viability of brackish groundwater desalination for agriculture in the Murray–Darling Basin |
Reeve P, Anese J, Mullins B, Wallis I, Batelaan O, Fallowfield H, Maier H, Westra S, Walton K, Watt E, Graetz D, Leonard M |
https://doi.org/10.36334/modsim2025.K01.reeve |
https://mssanz.org.au/modsim2025/files/K01.reeve.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
W |
| Nguyen D (Duc) |
Modelling the effects of vegetation on mitigation of gully erosion using Computational Fluid Dynamics (CFD) |
Nguyen D, Wakes S, Roberts ME |
https://doi.org/10.36334/modsim2025.L04.nguyen |
https://mssanz.org.au/modsim2025/files/L04.nguyen.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
N |
| Roberts ME |
Modelling the effects of vegetation on mitigation of gully erosion using Computational Fluid Dynamics (CFD) |
Nguyen D, Wakes S, Roberts ME |
https://doi.org/10.36334/modsim2025.L04.nguyen |
https://mssanz.org.au/modsim2025/files/L04.nguyen.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
R |
| Wakes S |
Modelling the effects of vegetation on mitigation of gully erosion using Computational Fluid Dynamics (CFD) |
Nguyen D, Wakes S, Roberts ME |
https://doi.org/10.36334/modsim2025.L04.nguyen |
https://mssanz.org.au/modsim2025/files/L04.nguyen.pdf |
L |
Water quality |
L4 |
Modelling Erosion and Pollutant Dynamics |
W |
| Carnie-Bronca S |
Modelling the evolution of topics in social media conversations |
Carnie-Bronca S |
https://doi.org/10.36334/modsim2025.A03.carniebronca |
https://mssanz.org.au/modsim2025/files/A03.carniebronca.pdf |
A |
Applied and computational mathematics |
A3 |
Modelling and simulation for trustworthy data science on challenging datasets |
C |
| Beverly C |
Modelling the frequency and extent of waterlogging: a case study |
Beverly C, Weeks A, McCaskill M, Harrison M |
https://doi.org/10.36334/modsim2025.J10.beverly |
https://mssanz.org.au/modsim2025/files/J10.beverly.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
B |
| Harrison M |
Modelling the frequency and extent of waterlogging: a case study |
Beverly C, Weeks A, McCaskill M, Harrison M |
https://doi.org/10.36334/modsim2025.J10.beverly |
https://mssanz.org.au/modsim2025/files/J10.beverly.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
H |
| McCaskill M |
Modelling the frequency and extent of waterlogging: a case study |
Beverly C, Weeks A, McCaskill M, Harrison M |
https://doi.org/10.36334/modsim2025.J10.beverly |
https://mssanz.org.au/modsim2025/files/J10.beverly.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
M |
| Weeks A |
Modelling the frequency and extent of waterlogging: a case study |
Beverly C, Weeks A, McCaskill M, Harrison M |
https://doi.org/10.36334/modsim2025.J10.beverly |
https://mssanz.org.au/modsim2025/files/J10.beverly.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
W |
| Aflah WN |
Modelling the hydrological impacts of leaky weirs on catchment rehydration using SWAT+ Modelstorage |
Aflah WN, van Ogtrop F, Vervoort RW |
https://doi.org/10.36334/modsim2025.J02.aflah |
https://mssanz.org.au/modsim2025/files/J02.aflah.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
A |
| van Ogtrop F |
Modelling the hydrological impacts of leaky weirs on catchment rehydration using SWAT+ Modelstorage |
Aflah WN, van Ogtrop F, Vervoort RW |
https://doi.org/10.36334/modsim2025.J02.aflah |
https://mssanz.org.au/modsim2025/files/J02.aflah.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
v |
| Vervoort RW |
Modelling the hydrological impacts of leaky weirs on catchment rehydration using SWAT+ Modelstorage |
Aflah WN, van Ogtrop F, Vervoort RW |
https://doi.org/10.36334/modsim2025.J02.aflah |
https://mssanz.org.au/modsim2025/files/J02.aflah.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
V |
| Gordon S |
Modelling the impact of novel Rht genes and biodegradable mulching on wheat early growth and yield |
Zhen X, He D, Rebetzke GJ, Gordon S, Wang E |
https://doi.org/10.36334/modsim2025.B08.zhen |
https://mssanz.org.au/modsim2025/files/B08.zhen.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
G |
| He D |
Modelling the impact of novel Rht genes and biodegradable mulching on wheat early growth and yield |
Zhen X, He D, Rebetzke GJ, Gordon S, Wang E |
https://doi.org/10.36334/modsim2025.B08.zhen |
https://mssanz.org.au/modsim2025/files/B08.zhen.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
H |
| Rebetzke GJ |
Modelling the impact of novel Rht genes and biodegradable mulching on wheat early growth and yield |
Zhen X, He D, Rebetzke GJ, Gordon S, Wang E |
https://doi.org/10.36334/modsim2025.B08.zhen |
https://mssanz.org.au/modsim2025/files/B08.zhen.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
R |
| Wang E (Enli) |
Modelling the impact of novel Rht genes and biodegradable mulching on wheat early growth and yield |
Zhen X, He D, Rebetzke GJ, Gordon S, Wang E |
https://doi.org/10.36334/modsim2025.B08.zhen |
https://mssanz.org.au/modsim2025/files/B08.zhen.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
W |
| Zhen X (Xioaxing) |
Modelling the impact of novel Rht genes and biodegradable mulching on wheat early growth and yield |
Zhen X, He D, Rebetzke GJ, Gordon S, Wang E |
https://doi.org/10.36334/modsim2025.B08.zhen |
https://mssanz.org.au/modsim2025/files/B08.zhen.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
Z |
| Pindor B |
Modelling the intensity of Victorian bushfire as observed by Himawari-9 (STREAM G KEYNOTE) |
Pindor B |
https://doi.org/10.36334/modsim2025.G08.pindor |
https://mssanz.org.au/modsim2025/files/G08.pindor.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
P |
| Dougherty J |
Modelling the whole farm effects of livestock selection: opportunities and limitations |
Keogh T, Dougherty J, Liedloff A, Thomas D, Schmoelzl S |
https://doi.org/10.36334/modsim2025.B04.keogh |
https://mssanz.org.au/modsim2025/files/B04.keogh.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
D |
| Keogh T |
Modelling the whole farm effects of livestock selection: opportunities and limitations |
Keogh T, Dougherty J, Liedloff A, Thomas D, Schmoelzl S |
https://doi.org/10.36334/modsim2025.B04.keogh |
https://mssanz.org.au/modsim2025/files/B04.keogh.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
K |
| Liedloff A |
Modelling the whole farm effects of livestock selection: opportunities and limitations |
Keogh T, Dougherty J, Liedloff A, Thomas D, Schmoelzl S |
https://doi.org/10.36334/modsim2025.B04.keogh |
https://mssanz.org.au/modsim2025/files/B04.keogh.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
L |
| Schmoelzl S |
Modelling the whole farm effects of livestock selection: opportunities and limitations |
Keogh T, Dougherty J, Liedloff A, Thomas D, Schmoelzl S |
https://doi.org/10.36334/modsim2025.B04.keogh |
https://mssanz.org.au/modsim2025/files/B04.keogh.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
S |
| Thomas D (Dean) |
Modelling the whole farm effects of livestock selection: opportunities and limitations |
Keogh T, Dougherty J, Liedloff A, Thomas D, Schmoelzl S |
https://doi.org/10.36334/modsim2025.B04.keogh |
https://mssanz.org.au/modsim2025/files/B04.keogh.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
T |
| Klewicki J |
Modelling thermal stratification in river waterholes using GLM |
Rabiei A, Western A, Philip J, Klewicki J |
https://doi.org/10.36334/modsim2025.L02.rabiei |
https://mssanz.org.au/modsim2025/files/L02.rabiei.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
K |
| Philip J |
Modelling thermal stratification in river waterholes using GLM |
Rabiei A, Western A, Philip J, Klewicki J |
https://doi.org/10.36334/modsim2025.L02.rabiei |
https://mssanz.org.au/modsim2025/files/L02.rabiei.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
P |
| Rabiei A |
Modelling thermal stratification in river waterholes using GLM |
Rabiei A, Western A, Philip J, Klewicki J |
https://doi.org/10.36334/modsim2025.L02.rabiei |
https://mssanz.org.au/modsim2025/files/L02.rabiei.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
R |
| Western A |
Modelling thermal stratification in river waterholes using GLM |
Rabiei A, Western A, Philip J, Klewicki J |
https://doi.org/10.36334/modsim2025.L02.rabiei |
https://mssanz.org.au/modsim2025/files/L02.rabiei.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
W |
| Simmons C |
Modelling tomorrow: Bridging science, society and innovation for a resilient South Australia |
Simmons C |
https://doi.org/10.36334/modsim2025.P01.simmons |
https://mssanz.org.au/modsim2025/files/P01.simmons.pdf |
P |
Plenary |
P1 |
Plenary |
S |
| Grazian C |
Modelling upstream water quality from downstream observations in the Muttama catchment |
Khang VS, Grazian C, Vervoort RW |
https://doi.org/10.36334/modsim2025.L01.khang |
https://mssanz.org.au/modsim2025/files/L01.khang.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
G |
| Khang VS |
Modelling upstream water quality from downstream observations in the Muttama catchment |
Khang VS, Grazian C, Vervoort RW |
https://doi.org/10.36334/modsim2025.L01.khang |
https://mssanz.org.au/modsim2025/files/L01.khang.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
K |
| Vervoort RW |
Modelling upstream water quality from downstream observations in the Muttama catchment |
Khang VS, Grazian C, Vervoort RW |
https://doi.org/10.36334/modsim2025.L01.khang |
https://mssanz.org.au/modsim2025/files/L01.khang.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
V |
| Grace W |
Modelling urban emissions – a Perth case study |
Grace W |
https://doi.org/10.36334/modsim2025.E01.grace |
https://mssanz.org.au/modsim2025/files/E01.grace.pdf |
E |
Energy, integrated infrastructure and urban planning |
E1 |
Tools for the Energy Transition |
G |
| Evans JP |
Modelling urban heat islands: The role of high-resolution urban morphology |
Imran HM, Mughal MO, Kala J, Evans J, Stuart A |
https://doi.org/10.36334/modsim2025.G06.imran |
https://mssanz.org.au/modsim2025/files/G06.imran.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
E |
| Imran HM |
Modelling urban heat islands: The role of high-resolution urban morphology |
Imran HM, Mughal MO, Kala J, Evans J, Stuart A |
https://doi.org/10.36334/modsim2025.G06.imran |
https://mssanz.org.au/modsim2025/files/G06.imran.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
I |
| Kala J |
Modelling urban heat islands: The role of high-resolution urban morphology |
Imran HM, Mughal MO, Kala J, Evans J, Stuart A |
https://doi.org/10.36334/modsim2025.G06.imran |
https://mssanz.org.au/modsim2025/files/G06.imran.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
K |
| Mughal MO |
Modelling urban heat islands: The role of high-resolution urban morphology |
Imran HM, Mughal MO, Kala J, Evans J, Stuart A |
https://doi.org/10.36334/modsim2025.G06.imran |
https://mssanz.org.au/modsim2025/files/G06.imran.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
M |
| Stuart A |
Modelling urban heat islands: The role of high-resolution urban morphology |
Imran HM, Mughal MO, Kala J, Evans J, Stuart A |
https://doi.org/10.36334/modsim2025.G06.imran |
https://mssanz.org.au/modsim2025/files/G06.imran.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
S |
| Breda A |
Modelling wetland vulnerability to sea-level rise |
Saco PM, Rodríguez JF, Breda A, Sandi E, Sandi S |
https://doi.org/10.36334/modsim2025.J11.saco |
https://mssanz.org.au/modsim2025/files/J11.saco.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
B |
| Rodríguez JF |
Modelling wetland vulnerability to sea-level rise |
Saco PM, Rodríguez JF, Breda A, Sandi E, Sandi S |
https://doi.org/10.36334/modsim2025.J11.saco |
https://mssanz.org.au/modsim2025/files/J11.saco.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
R |
| Saco PM |
Modelling wetland vulnerability to sea-level rise |
Saco PM, Rodríguez JF, Breda A, Sandi E, Sandi S |
https://doi.org/10.36334/modsim2025.J11.saco |
https://mssanz.org.au/modsim2025/files/J11.saco.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
S |
| Sandi E |
Modelling wetland vulnerability to sea-level rise |
Saco PM, Rodríguez JF, Breda A, Sandi E, Sandi S |
https://doi.org/10.36334/modsim2025.J11.saco |
https://mssanz.org.au/modsim2025/files/J11.saco.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
S |
| Sandi S |
Modelling wetland vulnerability to sea-level rise |
Saco PM, Rodríguez JF, Breda A, Sandi E, Sandi S |
https://doi.org/10.36334/modsim2025.J11.saco |
https://mssanz.org.au/modsim2025/files/J11.saco.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
S |
| Ellis R |
Modernising reach-scale stream bank erosion estimation in Australia |
Ellis R, Marsh N, Waters D |
https://doi.org/10.36334/modsim2025.L01.ellis |
https://mssanz.org.au/modsim2025/files/L01.ellis.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
E |
| Marsh N |
Modernising reach-scale stream bank erosion estimation in Australia |
Ellis R, Marsh N, Waters D |
https://doi.org/10.36334/modsim2025.L01.ellis |
https://mssanz.org.au/modsim2025/files/L01.ellis.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
M |
| Waters D |
Modernising reach-scale stream bank erosion estimation in Australia |
Ellis R, Marsh N, Waters D |
https://doi.org/10.36334/modsim2025.L01.ellis |
https://mssanz.org.au/modsim2025/files/L01.ellis.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
W |
| Evans JP |
Modes of pyrocumulonimbus development in southeast Australia |
Wilson CS, Sharples JJ, Evans JP |
https://doi.org/10.36334/modsim2025.G08.wilson |
https://mssanz.org.au/modsim2025/files/G08.wilson.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
E |
| Sharples JJ |
Modes of pyrocumulonimbus development in southeast Australia |
Wilson CS, Sharples JJ, Evans JP |
https://doi.org/10.36334/modsim2025.G08.wilson |
https://mssanz.org.au/modsim2025/files/G08.wilson.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
S |
| Wilson CS |
Modes of pyrocumulonimbus development in southeast Australia |
Wilson CS, Sharples JJ, Evans JP |
https://doi.org/10.36334/modsim2025.G08.wilson |
https://mssanz.org.au/modsim2025/files/G08.wilson.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
W |
| Knowling MJ |
More profits in good years, less risk in bad: Physics-informed reinforcement learning (RL) to inform crop selection |
Wang W, Knowling MJ |
https://doi.org/10.36334/modsim2025.B06.wang |
https://mssanz.org.au/modsim2025/files/B06.wang.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
K |
| Wang W |
More profits in good years, less risk in bad: Physics-informed reinforcement learning (RL) to inform crop selection |
Wang W, Knowling MJ |
https://doi.org/10.36334/modsim2025.B06.wang |
https://mssanz.org.au/modsim2025/files/B06.wang.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
W |
| Beesley B |
Mothership and multi-tender routing: an optimisation framework for coral deployment under bathymetric constraints |
Lippmann RB, Iwanaga T, Helmstedt KJ, Ribeiro de Almeida P, Beesley B, Corry P |
https://doi.org/10.36334/modsim2025.M01.lippmann |
https://mssanz.org.au/modsim2025/files/M01.lippmann.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
B |
| Corry PG (Paul) |
Mothership and multi-tender routing: an optimisation framework for coral deployment under bathymetric constraints |
Lippmann RB, Iwanaga T, Helmstedt KJ, Ribeiro de Almeida P, Beesley B, Corry P |
https://doi.org/10.36334/modsim2025.M01.lippmann |
https://mssanz.org.au/modsim2025/files/M01.lippmann.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
C |
| Helmstedt KJ |
Mothership and multi-tender routing: an optimisation framework for coral deployment under bathymetric constraints |
Lippmann RB, Iwanaga T, Helmstedt KJ, Ribeiro de Almeida P, Beesley B, Corry P |
https://doi.org/10.36334/modsim2025.M01.lippmann |
https://mssanz.org.au/modsim2025/files/M01.lippmann.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
H |
| Iwanaga T |
Mothership and multi-tender routing: an optimisation framework for coral deployment under bathymetric constraints |
Lippmann RB, Iwanaga T, Helmstedt KJ, Ribeiro de Almeida P, Beesley B, Corry P |
https://doi.org/10.36334/modsim2025.M01.lippmann |
https://mssanz.org.au/modsim2025/files/M01.lippmann.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
I |
| Lippmann RB |
Mothership and multi-tender routing: an optimisation framework for coral deployment under bathymetric constraints |
Lippmann RB, Iwanaga T, Helmstedt KJ, Ribeiro de Almeida P, Beesley B, Corry P |
https://doi.org/10.36334/modsim2025.M01.lippmann |
https://mssanz.org.au/modsim2025/files/M01.lippmann.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
L |
| Ribeiro de Almeida P |
Mothership and multi-tender routing: an optimisation framework for coral deployment under bathymetric constraints |
Lippmann RB, Iwanaga T, Helmstedt KJ, Ribeiro de Almeida P, Beesley B, Corry P |
https://doi.org/10.36334/modsim2025.M01.lippmann |
https://mssanz.org.au/modsim2025/files/M01.lippmann.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
R |
| Bennett J |
Multi lead time parameter inference for post-processing precipitation forecasts |
Shrestha D, Robertson D, Bennett J, Schepen A |
https://doi.org/10.36334/modsim2025.K02.shrestha |
https://mssanz.org.au/modsim2025/files/K02.shrestha.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
B |
| Robertson D |
Multi lead time parameter inference for post-processing precipitation forecasts |
Shrestha D, Robertson D, Bennett J, Schepen A |
https://doi.org/10.36334/modsim2025.K02.shrestha |
https://mssanz.org.au/modsim2025/files/K02.shrestha.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
R |
| Schepen A |
Multi lead time parameter inference for post-processing precipitation forecasts |
Shrestha D, Robertson D, Bennett J, Schepen A |
https://doi.org/10.36334/modsim2025.K02.shrestha |
https://mssanz.org.au/modsim2025/files/K02.shrestha.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
S |
| Shrestha D |
Multi lead time parameter inference for post-processing precipitation forecasts |
Shrestha D, Robertson D, Bennett J, Schepen A |
https://doi.org/10.36334/modsim2025.K02.shrestha |
https://mssanz.org.au/modsim2025/files/K02.shrestha.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
S |
| Akbar D |
Multi-crop modelling framework for evaluating irrigation strategies and sowing window optimisation across Australian production environments |
Sarker J, Akbar D, Rolfe J |
https://doi.org/10.36334/modsim2025.B05.sarker |
https://mssanz.org.au/modsim2025/files/B05.sarker.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
A |
| Rolfe J |
Multi-crop modelling framework for evaluating irrigation strategies and sowing window optimisation across Australian production environments |
Sarker J, Akbar D, Rolfe J |
https://doi.org/10.36334/modsim2025.B05.sarker |
https://mssanz.org.au/modsim2025/files/B05.sarker.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
R |
| Sarker J |
Multi-crop modelling framework for evaluating irrigation strategies and sowing window optimisation across Australian production environments |
Sarker J, Akbar D, Rolfe J |
https://doi.org/10.36334/modsim2025.B05.sarker |
https://mssanz.org.au/modsim2025/files/B05.sarker.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
S |
| Coutts A |
Multi-objective and multi-stage optimisation for force structure design |
Nguyen MT, Widjaja I, Coutts A |
https://doi.org/10.36334/modsim2025.M01.nguyen |
https://mssanz.org.au/modsim2025/files/M01.nguyen.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
C |
| Nguyen MT |
Multi-objective and multi-stage optimisation for force structure design |
Nguyen MT, Widjaja I, Coutts A |
https://doi.org/10.36334/modsim2025.M01.nguyen |
https://mssanz.org.au/modsim2025/files/M01.nguyen.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
N |
| Widjaja I |
Multi-objective and multi-stage optimisation for force structure design |
Nguyen MT, Widjaja I, Coutts A |
https://doi.org/10.36334/modsim2025.M01.nguyen |
https://mssanz.org.au/modsim2025/files/M01.nguyen.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
W |
| Evans JP |
Multiscale analysis of terrain–lightning relationships using machine learning |
Rahmani S, Evans J, Sharples J |
https://doi.org/10.36334/modsim2025.G08.rahmani |
https://mssanz.org.au/modsim2025/files/G08.rahmani.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
E |
| Rahmani S |
Multiscale analysis of terrain–lightning relationships using machine learning |
Rahmani S, Evans J, Sharples J |
https://doi.org/10.36334/modsim2025.G08.rahmani |
https://mssanz.org.au/modsim2025/files/G08.rahmani.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
R |
| Sharples JJ |
Multiscale analysis of terrain–lightning relationships using machine learning |
Rahmani S, Evans J, Sharples J |
https://doi.org/10.36334/modsim2025.G08.rahmani |
https://mssanz.org.au/modsim2025/files/G08.rahmani.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
S |
| Lintern A |
MUSIC:'s Bioretention Node under climate change: What changes do we need? |
Wake J, Lintern A, Winfrey B, Zamyadi A, Tang FHM |
https://doi.org/10.36334/modsim2025.L03.wake |
https://mssanz.org.au/modsim2025/files/L03.wake.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
L |
| Tang FHM |
MUSIC:'s Bioretention Node under climate change: What changes do we need? |
Wake J, Lintern A, Winfrey B, Zamyadi A, Tang FHM |
https://doi.org/10.36334/modsim2025.L03.wake |
https://mssanz.org.au/modsim2025/files/L03.wake.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
T |
| Wake J |
MUSIC:'s Bioretention Node under climate change: What changes do we need? |
Wake J, Lintern A, Winfrey B, Zamyadi A, Tang FHM |
https://doi.org/10.36334/modsim2025.L03.wake |
https://mssanz.org.au/modsim2025/files/L03.wake.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
W |
| Winfrey B |
MUSIC:'s Bioretention Node under climate change: What changes do we need? |
Wake J, Lintern A, Winfrey B, Zamyadi A, Tang FHM |
https://doi.org/10.36334/modsim2025.L03.wake |
https://mssanz.org.au/modsim2025/files/L03.wake.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
W |
| Zamyadi A |
MUSIC:'s Bioretention Node under climate change: What changes do we need? |
Wake J, Lintern A, Winfrey B, Zamyadi A, Tang FHM |
https://doi.org/10.36334/modsim2025.L03.wake |
https://mssanz.org.au/modsim2025/files/L03.wake.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
Z |
| Crosbie RS |
Muti-variable calibration to improve robustness of landscape models under change |
Gibbs M, Wang B, Crosbie R, Montazeri M, Vaze J, Yang A |
https://doi.org/10.36334/modsim2025.J07.gibbs |
https://mssanz.org.au/modsim2025/files/J07.gibbs.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
C |
| Gibbs MS |
Muti-variable calibration to improve robustness of landscape models under change |
Gibbs M, Wang B, Crosbie R, Montazeri M, Vaze J, Yang A |
https://doi.org/10.36334/modsim2025.J07.gibbs |
https://mssanz.org.au/modsim2025/files/J07.gibbs.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
G |
| Montazeri M |
Muti-variable calibration to improve robustness of landscape models under change |
Gibbs M, Wang B, Crosbie R, Montazeri M, Vaze J, Yang A |
https://doi.org/10.36334/modsim2025.J07.gibbs |
https://mssanz.org.au/modsim2025/files/J07.gibbs.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
M |
| Vaze J |
Muti-variable calibration to improve robustness of landscape models under change |
Gibbs M, Wang B, Crosbie R, Montazeri M, Vaze J, Yang A |
https://doi.org/10.36334/modsim2025.J07.gibbs |
https://mssanz.org.au/modsim2025/files/J07.gibbs.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
V |
| Wang B (Bill) |
Muti-variable calibration to improve robustness of landscape models under change |
Gibbs M, Wang B, Crosbie R, Montazeri M, Vaze J, Yang A |
https://doi.org/10.36334/modsim2025.J07.gibbs |
https://mssanz.org.au/modsim2025/files/J07.gibbs.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
W |
| Yang A |
Muti-variable calibration to improve robustness of landscape models under change |
Gibbs M, Wang B, Crosbie R, Montazeri M, Vaze J, Yang A |
https://doi.org/10.36334/modsim2025.J07.gibbs |
https://mssanz.org.au/modsim2025/files/J07.gibbs.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
Y |
| Ching M |
Naomi and Murrumbidgee water balance tool – an integrated approach for river system manaement |
Ching M, Inamdar P, Nicholls D, Rahman J, Smith T |
https://doi.org/10.36334/modsim2025.J02.ching |
https://mssanz.org.au/modsim2025/files/J02.ching.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
C |
| Inamdar P |
Naomi and Murrumbidgee water balance tool – an integrated approach for river system manaement |
Ching M, Inamdar P, Nicholls D, Rahman J, Smith T |
https://doi.org/10.36334/modsim2025.J02.ching |
https://mssanz.org.au/modsim2025/files/J02.ching.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
I |
| Nicholls D |
Naomi and Murrumbidgee water balance tool – an integrated approach for river system manaement |
Ching M, Inamdar P, Nicholls D, Rahman J, Smith T |
https://doi.org/10.36334/modsim2025.J02.ching |
https://mssanz.org.au/modsim2025/files/J02.ching.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
N |
| Rahman J (Joel) |
Naomi and Murrumbidgee water balance tool – an integrated approach for river system manaement |
Ching M, Inamdar P, Nicholls D, Rahman J, Smith T |
https://doi.org/10.36334/modsim2025.J02.ching |
https://mssanz.org.au/modsim2025/files/J02.ching.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
R |
| Smith T |
Naomi and Murrumbidgee water balance tool – an integrated approach for river system manaement |
Ching M, Inamdar P, Nicholls D, Rahman J, Smith T |
https://doi.org/10.36334/modsim2025.J02.ching |
https://mssanz.org.au/modsim2025/files/J02.ching.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
S |
| Evans D |
National-scale monitoring of irrigated agricultural water use using remote sensing evapotranspiration and a hydrological framework |
Liu N, Smith GS, Evans D, McVicar TR, Peña‑Arancibia JL, Tetreault‑Campbell S, Pascoe S |
https://doi.org/10.36334/modsim2025.J05.liu |
https://mssanz.org.au/modsim2025/files/J05.liu.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
E |
| Liu N |
National-scale monitoring of irrigated agricultural water use using remote sensing evapotranspiration and a hydrological framework |
Liu N, Smith GS, Evans D, McVicar TR, Peña‑Arancibia JL, Tetreault‑Campbell S, Pascoe S |
https://doi.org/10.36334/modsim2025.J05.liu |
https://mssanz.org.au/modsim2025/files/J05.liu.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
L |
| McVicar TR |
National-scale monitoring of irrigated agricultural water use using remote sensing evapotranspiration and a hydrological framework |
Liu N, Smith GS, Evans D, McVicar TR, Peña‑Arancibia JL, Tetreault‑Campbell S, Pascoe S |
https://doi.org/10.36334/modsim2025.J05.liu |
https://mssanz.org.au/modsim2025/files/J05.liu.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
M |
| Pascoe S |
National-scale monitoring of irrigated agricultural water use using remote sensing evapotranspiration and a hydrological framework |
Liu N, Smith GS, Evans D, McVicar TR, Peña‑Arancibia JL, Tetreault‑Campbell S, Pascoe S |
https://doi.org/10.36334/modsim2025.J05.liu |
https://mssanz.org.au/modsim2025/files/J05.liu.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
P |
| Peña‑Arancibia JL |
National-scale monitoring of irrigated agricultural water use using remote sensing evapotranspiration and a hydrological framework |
Liu N, Smith GS, Evans D, McVicar TR, Peña‑Arancibia JL, Tetreault‑Campbell S, Pascoe S |
https://doi.org/10.36334/modsim2025.J05.liu |
https://mssanz.org.au/modsim2025/files/J05.liu.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
P |
| Smith GS |
National-scale monitoring of irrigated agricultural water use using remote sensing evapotranspiration and a hydrological framework |
Liu N, Smith GS, Evans D, McVicar TR, Peña‑Arancibia JL, Tetreault‑Campbell S, Pascoe S |
https://doi.org/10.36334/modsim2025.J05.liu |
https://mssanz.org.au/modsim2025/files/J05.liu.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
S |
| Tetreault‑Campbell S |
National-scale monitoring of irrigated agricultural water use using remote sensing evapotranspiration and a hydrological framework |
Liu N, Smith GS, Evans D, McVicar TR, Peña‑Arancibia JL, Tetreault‑Campbell S, Pascoe S |
https://doi.org/10.36334/modsim2025.J05.liu |
https://mssanz.org.au/modsim2025/files/J05.liu.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
T |
| Culley S (Sam) |
Natural hazards ahead: Navigating uncertainty with stakeholder-led scenarios |
Miller A, Culley S, Radford D, van Delden H, Zecchin A, Vanhout R, Donohue T, Whiting T, Maier HR |
https://doi.org/10.36334/modsim2025.F05.miller |
https://mssanz.org.au/modsim2025/files/F05.miller.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
C |
| Donohue T |
Natural hazards ahead: Navigating uncertainty with stakeholder-led scenarios |
Miller A, Culley S, Radford D, van Delden H, Zecchin A, Vanhout R, Donohue T, Whiting T, Maier HR |
https://doi.org/10.36334/modsim2025.F05.miller |
https://mssanz.org.au/modsim2025/files/F05.miller.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
D |
| Maier HR |
Natural hazards ahead: Navigating uncertainty with stakeholder-led scenarios |
Miller A, Culley S, Radford D, van Delden H, Zecchin A, Vanhout R, Donohue T, Whiting T, Maier HR |
https://doi.org/10.36334/modsim2025.F05.miller |
https://mssanz.org.au/modsim2025/files/F05.miller.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
M |
| Miller A |
Natural hazards ahead: Navigating uncertainty with stakeholder-led scenarios |
Miller A, Culley S, Radford D, van Delden H, Zecchin A, Vanhout R, Donohue T, Whiting T, Maier HR |
https://doi.org/10.36334/modsim2025.F05.miller |
https://mssanz.org.au/modsim2025/files/F05.miller.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
M |
| Radford DAG |
Natural hazards ahead: Navigating uncertainty with stakeholder-led scenarios |
Miller A, Culley S, Radford D, van Delden H, Zecchin A, Vanhout R, Donohue T, Whiting T, Maier HR |
https://doi.org/10.36334/modsim2025.F05.miller |
https://mssanz.org.au/modsim2025/files/F05.miller.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
R |
| van Delden H |
Natural hazards ahead: Navigating uncertainty with stakeholder-led scenarios |
Miller A, Culley S, Radford D, van Delden H, Zecchin A, Vanhout R, Donohue T, Whiting T, Maier HR |
https://doi.org/10.36334/modsim2025.F05.miller |
https://mssanz.org.au/modsim2025/files/F05.miller.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
v |
| Vanhout R |
Natural hazards ahead: Navigating uncertainty with stakeholder-led scenarios |
Miller A, Culley S, Radford D, van Delden H, Zecchin A, Vanhout R, Donohue T, Whiting T, Maier HR |
https://doi.org/10.36334/modsim2025.F05.miller |
https://mssanz.org.au/modsim2025/files/F05.miller.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
V |
| Whiting T |
Natural hazards ahead: Navigating uncertainty with stakeholder-led scenarios |
Miller A, Culley S, Radford D, van Delden H, Zecchin A, Vanhout R, Donohue T, Whiting T, Maier HR |
https://doi.org/10.36334/modsim2025.F05.miller |
https://mssanz.org.au/modsim2025/files/F05.miller.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
W |
| Zecchin A |
Natural hazards ahead: Navigating uncertainty with stakeholder-led scenarios |
Miller A, Culley S, Radford D, van Delden H, Zecchin A, Vanhout R, Donohue T, Whiting T, Maier HR |
https://doi.org/10.36334/modsim2025.F05.miller |
https://mssanz.org.au/modsim2025/files/F05.miller.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
Z |
| Bennett B |
Neglecting hydrological errors can severely impact predictions of water resource system performance |
Thyer M, McInerney D, Kavetski D, Westra S, Maier H, Shanafield M, Croke B, Gupta H, Bennett B, Leonard M |
https://doi.org/10.36334/modsim2025.J08.thyer |
https://mssanz.org.au/modsim2025/files/J08.thyer.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
B |
| Croke B |
Neglecting hydrological errors can severely impact predictions of water resource system performance |
Thyer M, McInerney D, Kavetski D, Westra S, Maier H, Shanafield M, Croke B, Gupta H, Bennett B, Leonard M |
https://doi.org/10.36334/modsim2025.J08.thyer |
https://mssanz.org.au/modsim2025/files/J08.thyer.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
C |
| Gupta H |
Neglecting hydrological errors can severely impact predictions of water resource system performance |
Thyer M, McInerney D, Kavetski D, Westra S, Maier H, Shanafield M, Croke B, Gupta H, Bennett B, Leonard M |
https://doi.org/10.36334/modsim2025.J08.thyer |
https://mssanz.org.au/modsim2025/files/J08.thyer.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
G |
| Kavetski D |
Neglecting hydrological errors can severely impact predictions of water resource system performance |
Thyer M, McInerney D, Kavetski D, Westra S, Maier H, Shanafield M, Croke B, Gupta H, Bennett B, Leonard M |
https://doi.org/10.36334/modsim2025.J08.thyer |
https://mssanz.org.au/modsim2025/files/J08.thyer.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
K |
| Leonard M (Michael) |
Neglecting hydrological errors can severely impact predictions of water resource system performance |
Thyer M, McInerney D, Kavetski D, Westra S, Maier H, Shanafield M, Croke B, Gupta H, Bennett B, Leonard M |
https://doi.org/10.36334/modsim2025.J08.thyer |
https://mssanz.org.au/modsim2025/files/J08.thyer.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
L |
| Maier HR |
Neglecting hydrological errors can severely impact predictions of water resource system performance |
Thyer M, McInerney D, Kavetski D, Westra S, Maier H, Shanafield M, Croke B, Gupta H, Bennett B, Leonard M |
https://doi.org/10.36334/modsim2025.J08.thyer |
https://mssanz.org.au/modsim2025/files/J08.thyer.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
M |
| McInerney D |
Neglecting hydrological errors can severely impact predictions of water resource system performance |
Thyer M, McInerney D, Kavetski D, Westra S, Maier H, Shanafield M, Croke B, Gupta H, Bennett B, Leonard M |
https://doi.org/10.36334/modsim2025.J08.thyer |
https://mssanz.org.au/modsim2025/files/J08.thyer.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
M |
| Shanafield M |
Neglecting hydrological errors can severely impact predictions of water resource system performance |
Thyer M, McInerney D, Kavetski D, Westra S, Maier H, Shanafield M, Croke B, Gupta H, Bennett B, Leonard M |
https://doi.org/10.36334/modsim2025.J08.thyer |
https://mssanz.org.au/modsim2025/files/J08.thyer.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
S |
| Thyer M |
Neglecting hydrological errors can severely impact predictions of water resource system performance |
Thyer M, McInerney D, Kavetski D, Westra S, Maier H, Shanafield M, Croke B, Gupta H, Bennett B, Leonard M |
https://doi.org/10.36334/modsim2025.J08.thyer |
https://mssanz.org.au/modsim2025/files/J08.thyer.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
T |
| Westra S |
Neglecting hydrological errors can severely impact predictions of water resource system performance |
Thyer M, McInerney D, Kavetski D, Westra S, Maier H, Shanafield M, Croke B, Gupta H, Bennett B, Leonard M |
https://doi.org/10.36334/modsim2025.J08.thyer |
https://mssanz.org.au/modsim2025/files/J08.thyer.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
W |
| Lang B |
Network analysis of Australian Internet traffic dynamics |
Lang B, Roughan M, Nguyen H |
https://doi.org/10.36334/modsim2025.A03.lang |
https://mssanz.org.au/modsim2025/files/A03.lang.pdf |
A |
Applied and computational mathematics |
A3 |
Modelling and simulation for trustworthy data science on challenging datasets |
L |
| Nguyen H |
Network analysis of Australian Internet traffic dynamics |
Lang B, Roughan M, Nguyen H |
https://doi.org/10.36334/modsim2025.A03.lang |
https://mssanz.org.au/modsim2025/files/A03.lang.pdf |
A |
Applied and computational mathematics |
A3 |
Modelling and simulation for trustworthy data science on challenging datasets |
N |
| Roughan M |
Network analysis of Australian Internet traffic dynamics |
Lang B, Roughan M, Nguyen H |
https://doi.org/10.36334/modsim2025.A03.lang |
https://mssanz.org.au/modsim2025/files/A03.lang.pdf |
A |
Applied and computational mathematics |
A3 |
Modelling and simulation for trustworthy data science on challenging datasets |
R |
| He D |
New approaches for simulating germination and emergence in APSIM |
He D, Rebetzke GJ, Luo T, Zhen X, Wang E |
https://doi.org/10.36334/modsim2025.B02.he |
https://mssanz.org.au/modsim2025/files/B02.he.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
H |
| Luo T |
New approaches for simulating germination and emergence in APSIM |
He D, Rebetzke GJ, Luo T, Zhen X, Wang E |
https://doi.org/10.36334/modsim2025.B02.he |
https://mssanz.org.au/modsim2025/files/B02.he.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
L |
| Rebetzke GJ |
New approaches for simulating germination and emergence in APSIM |
He D, Rebetzke GJ, Luo T, Zhen X, Wang E |
https://doi.org/10.36334/modsim2025.B02.he |
https://mssanz.org.au/modsim2025/files/B02.he.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
R |
| Wang E (Enli) |
New approaches for simulating germination and emergence in APSIM |
He D, Rebetzke GJ, Luo T, Zhen X, Wang E |
https://doi.org/10.36334/modsim2025.B02.he |
https://mssanz.org.au/modsim2025/files/B02.he.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
W |
| Zhen X (Xiaoxing) |
New approaches for simulating germination and emergence in APSIM |
He D, Rebetzke GJ, Luo T, Zhen X, Wang E |
https://doi.org/10.36334/modsim2025.B02.he |
https://mssanz.org.au/modsim2025/files/B02.he.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
Z |
| Hayde P |
New hydraulic model for integrated water management |
Obeid R, Wang XJ, Hayde P |
https://doi.org/10.36334/modsim2025.A02.obeid |
https://mssanz.org.au/modsim2025/files/A02.obeid.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
H |
| Obeid R |
New hydraulic model for integrated water management |
Obeid R, Wang XJ, Hayde P |
https://doi.org/10.36334/modsim2025.A02.obeid |
https://mssanz.org.au/modsim2025/files/A02.obeid.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
O |
| Wang XJ |
New hydraulic model for integrated water management |
Obeid R, Wang XJ, Hayde P |
https://doi.org/10.36334/modsim2025.A02.obeid |
https://mssanz.org.au/modsim2025/files/A02.obeid.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
W |
| L’Ecuyer P |
New random number generation tools for parallel environments (STREAM A KEYNOTE) |
L’Ecuyer P |
https://doi.org/10.36334/modsim2025.A01.lecuyer |
https://mssanz.org.au/modsim2025/files/A01.lecuyer.pdf |
A |
Applied and computational mathematics |
A1 |
Applied Probability |
L |
| Graham P |
Next-generation electric vehicle forecasting: long-term sales projections in the Australian context |
Mediwaththe C, Graham P, Green D |
https://doi.org/10.36334/modsim2025.E03.mediwaththe |
https://mssanz.org.au/modsim2025/files/E03.mediwaththe.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
G |
| Green D |
Next-generation electric vehicle forecasting: long-term sales projections in the Australian context |
Mediwaththe C, Graham P, Green D |
https://doi.org/10.36334/modsim2025.E03.mediwaththe |
https://mssanz.org.au/modsim2025/files/E03.mediwaththe.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
G |
| Mediwaththe C |
Next-generation electric vehicle forecasting: long-term sales projections in the Australian context |
Mediwaththe C, Graham P, Green D |
https://doi.org/10.36334/modsim2025.E03.mediwaththe |
https://mssanz.org.au/modsim2025/files/E03.mediwaththe.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
M |
| Chen D (Deli) |
Nitrogen loss in sugarcane: uncertainty and sensitivity analysis of APSIM predictions |
Kolar P, Pan B, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.B03.kolar |
https://mssanz.org.au/modsim2025/files/B03.kolar.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
C |
| Kolar P |
Nitrogen loss in sugarcane: uncertainty and sensitivity analysis of APSIM predictions |
Kolar P, Pan B, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.B03.kolar |
https://mssanz.org.au/modsim2025/files/B03.kolar.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
K |
| Lam SK (Shu Kee) |
Nitrogen loss in sugarcane: uncertainty and sensitivity analysis of APSIM predictions |
Kolar P, Pan B, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.B03.kolar |
https://mssanz.org.au/modsim2025/files/B03.kolar.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
L |
| Pan B (Baobao) |
Nitrogen loss in sugarcane: uncertainty and sensitivity analysis of APSIM predictions |
Kolar P, Pan B, Chen D, Lam SK |
https://doi.org/10.36334/modsim2025.B03.kolar |
https://mssanz.org.au/modsim2025/files/B03.kolar.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
P |
| Lerat J |
Non-linear reservoir modelling without tears using the QuaSoARe approach |
Lerat J |
https://doi.org/10.36334/modsim2025.A02.lerat |
https://mssanz.org.au/modsim2025/files/A02.lerat.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
L |
| Barron O |
Novel assessment of trajectories of change in Murray-Darling Basin riverine tree ecosystems |
Doody T, Barron O, Emelyanova I |
https://doi.org/10.36334/modsim2025.F04.doody |
https://mssanz.org.au/modsim2025/files/F04.doody.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
B |
| Doody T |
Novel assessment of trajectories of change in Murray-Darling Basin riverine tree ecosystems |
Doody T, Barron O, Emelyanova I |
https://doi.org/10.36334/modsim2025.F04.doody |
https://mssanz.org.au/modsim2025/files/F04.doody.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
D |
| Emelyanova I |
Novel assessment of trajectories of change in Murray-Darling Basin riverine tree ecosystems |
Doody T, Barron O, Emelyanova I |
https://doi.org/10.36334/modsim2025.F04.doody |
https://mssanz.org.au/modsim2025/files/F04.doody.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
E |
| Almeida Lima V |
Nutrient leaching and water recycling potential for vegetable production in Western Australia’s sandy soils |
Almeida Lima V, Glicerio JM, Miranda JH, Lantzke N |
https://doi.org/10.36334/modsim2025.L03.almeidalima |
https://mssanz.org.au/modsim2025/files/L03.almeidalima.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
A |
| Glicerio JM |
Nutrient leaching and water recycling potential for vegetable production in Western Australia’s sandy soils |
Almeida Lima V, Glicerio JM, Miranda JH, Lantzke N |
https://doi.org/10.36334/modsim2025.L03.almeidalima |
https://mssanz.org.au/modsim2025/files/L03.almeidalima.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
G |
| Lantzke N |
Nutrient leaching and water recycling potential for vegetable production in Western Australia’s sandy soils |
Almeida Lima V, Glicerio JM, Miranda JH, Lantzke N |
https://doi.org/10.36334/modsim2025.L03.almeidalima |
https://mssanz.org.au/modsim2025/files/L03.almeidalima.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
L |
| Miranda JH |
Nutrient leaching and water recycling potential for vegetable production in Western Australia’s sandy soils |
Almeida Lima V, Glicerio JM, Miranda JH, Lantzke N |
https://doi.org/10.36334/modsim2025.L03.almeidalima |
https://mssanz.org.au/modsim2025/files/L03.almeidalima.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
M |
| McGinty N |
Objective evidence for the future |
McGinty N |
https://doi.org/10.36334/modsim2025.P03.mcginty |
https://mssanz.org.au/modsim2025/files/P03.mcginty.pdf |
P |
Plenary |
P3 |
Plenary |
M |
| McRae RHD |
Observations of vorticity-driven lateral spread in a wildfire |
McRae RHD |
https://doi.org/10.36334/modsim2025.G08.mcraer |
https://mssanz.org.au/modsim2025/files/G08.mcraer.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
M |
| Jeanneau A |
Old tools, new landscapes: Application of multi-objective evolutionary algorithms to achieve bushfire risk reduction objectives |
Radford DAG, Maier HR, Zecchin AC, van Delden H, Jeanneau A |
https://doi.org/10.36334/modsim2025.G07.radford |
https://mssanz.org.au/modsim2025/files/G07.radford.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
J |
| Maier HR |
Old tools, new landscapes: Application of multi-objective evolutionary algorithms to achieve bushfire risk reduction objectives |
Radford DAG, Maier HR, Zecchin AC, van Delden H, Jeanneau A |
https://doi.org/10.36334/modsim2025.G07.radford |
https://mssanz.org.au/modsim2025/files/G07.radford.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
M |
| Radford DAG |
Old tools, new landscapes: Application of multi-objective evolutionary algorithms to achieve bushfire risk reduction objectives |
Radford DAG, Maier HR, Zecchin AC, van Delden H, Jeanneau A |
https://doi.org/10.36334/modsim2025.G07.radford |
https://mssanz.org.au/modsim2025/files/G07.radford.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
R |
| van Delden H |
Old tools, new landscapes: Application of multi-objective evolutionary algorithms to achieve bushfire risk reduction objectives |
Radford DAG, Maier HR, Zecchin AC, van Delden H, Jeanneau A |
https://doi.org/10.36334/modsim2025.G07.radford |
https://mssanz.org.au/modsim2025/files/G07.radford.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
v |
| Zecchin AC |
Old tools, new landscapes: Application of multi-objective evolutionary algorithms to achieve bushfire risk reduction objectives |
Radford DAG, Maier HR, Zecchin AC, van Delden H, Jeanneau A |
https://doi.org/10.36334/modsim2025.G07.radford |
https://mssanz.org.au/modsim2025/files/G07.radford.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
Z |
| Akbarzadeh Khorshidi H |
On causal loop diagrams and directed acyclic graphs: Insights in health systems and genomics |
Akbarzadeh Khorshidi H, Franchini F, Chen G |
https://doi.org/10.36334/modsim2025.H03.akbarzadehkhorshidi |
https://mssanz.org.au/modsim2025/files/H03.akbarzadehkhorshidi.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
A |
| Chen G (Gang) |
On causal loop diagrams and directed acyclic graphs: Insights in health systems and genomics |
Akbarzadeh Khorshidi H, Franchini F, Chen G |
https://doi.org/10.36334/modsim2025.H03.akbarzadehkhorshidi |
https://mssanz.org.au/modsim2025/files/H03.akbarzadehkhorshidi.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
C |
| Franchini F |
On causal loop diagrams and directed acyclic graphs: Insights in health systems and genomics |
Akbarzadeh Khorshidi H, Franchini F, Chen G |
https://doi.org/10.36334/modsim2025.H03.akbarzadehkhorshidi |
https://mssanz.org.au/modsim2025/files/H03.akbarzadehkhorshidi.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
F |
| Kim DJ |
Operational satellite-based disaster monitoring on the cloud: Case studies from Asia (INVITED SPEAKER) |
Kim DJ, Lee S, Song J |
https://doi.org/10.36334/modsim2025.G02.kim |
https://mssanz.org.au/modsim2025/files/G02.kim.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
K |
| Lee S |
Operational satellite-based disaster monitoring on the cloud: Case studies from Asia (INVITED SPEAKER) |
Kim DJ, Lee S, Song J |
https://doi.org/10.36334/modsim2025.G02.kim |
https://mssanz.org.au/modsim2025/files/G02.kim.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
L |
| Song J (Juyoung) |
Operational satellite-based disaster monitoring on the cloud: Case studies from Asia (INVITED SPEAKER) |
Kim DJ, Lee S, Song J |
https://doi.org/10.36334/modsim2025.G02.kim |
https://mssanz.org.au/modsim2025/files/G02.kim.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
S |
| Aghaeimeybodi M |
Optimisation of energy supply to industry hub with multi-criteria selection and techno-economic assessment |
Wang S, Li C, Mojiri A, Iyer S, Aghaeimeybodi M, Pye J, Beath A, Beck F, Hosseini T, Coventry J |
https://doi.org/10.36334/modsim2025.E02.wang |
https://mssanz.org.au/modsim2025/files/E02.wang.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
A |
| Beath A |
Optimisation of energy supply to industry hub with multi-criteria selection and techno-economic assessment |
Wang S, Li C, Mojiri A, Iyer S, Aghaeimeybodi M, Pye J, Beath A, Beck F, Hosseini T, Coventry J |
https://doi.org/10.36334/modsim2025.E02.wang |
https://mssanz.org.au/modsim2025/files/E02.wang.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
B |
| Beck F |
Optimisation of energy supply to industry hub with multi-criteria selection and techno-economic assessment |
Wang S, Li C, Mojiri A, Iyer S, Aghaeimeybodi M, Pye J, Beath A, Beck F, Hosseini T, Coventry J |
https://doi.org/10.36334/modsim2025.E02.wang |
https://mssanz.org.au/modsim2025/files/E02.wang.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
B |
| Coventry J |
Optimisation of energy supply to industry hub with multi-criteria selection and techno-economic assessment |
Wang S, Li C, Mojiri A, Iyer S, Aghaeimeybodi M, Pye J, Beath A, Beck F, Hosseini T, Coventry J |
https://doi.org/10.36334/modsim2025.E02.wang |
https://mssanz.org.au/modsim2025/files/E02.wang.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
C |
| Hosseini T |
Optimisation of energy supply to industry hub with multi-criteria selection and techno-economic assessment |
Wang S, Li C, Mojiri A, Iyer S, Aghaeimeybodi M, Pye J, Beath A, Beck F, Hosseini T, Coventry J |
https://doi.org/10.36334/modsim2025.E02.wang |
https://mssanz.org.au/modsim2025/files/E02.wang.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
H |
| Iyer S |
Optimisation of energy supply to industry hub with multi-criteria selection and techno-economic assessment |
Wang S, Li C, Mojiri A, Iyer S, Aghaeimeybodi M, Pye J, Beath A, Beck F, Hosseini T, Coventry J |
https://doi.org/10.36334/modsim2025.E02.wang |
https://mssanz.org.au/modsim2025/files/E02.wang.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
I |
| Li C (Chengzhe) |
Optimisation of energy supply to industry hub with multi-criteria selection and techno-economic assessment |
Wang S, Li C, Mojiri A, Iyer S, Aghaeimeybodi M, Pye J, Beath A, Beck F, Hosseini T, Coventry J |
https://doi.org/10.36334/modsim2025.E02.wang |
https://mssanz.org.au/modsim2025/files/E02.wang.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
L |
| Mojiri A |
Optimisation of energy supply to industry hub with multi-criteria selection and techno-economic assessment |
Wang S, Li C, Mojiri A, Iyer S, Aghaeimeybodi M, Pye J, Beath A, Beck F, Hosseini T, Coventry J |
https://doi.org/10.36334/modsim2025.E02.wang |
https://mssanz.org.au/modsim2025/files/E02.wang.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
M |
| Pye J |
Optimisation of energy supply to industry hub with multi-criteria selection and techno-economic assessment |
Wang S, Li C, Mojiri A, Iyer S, Aghaeimeybodi M, Pye J, Beath A, Beck F, Hosseini T, Coventry J |
https://doi.org/10.36334/modsim2025.E02.wang |
https://mssanz.org.au/modsim2025/files/E02.wang.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
P |
| Wang S |
Optimisation of energy supply to industry hub with multi-criteria selection and techno-economic assessment |
Wang S, Li C, Mojiri A, Iyer S, Aghaeimeybodi M, Pye J, Beath A, Beck F, Hosseini T, Coventry J |
https://doi.org/10.36334/modsim2025.E02.wang |
https://mssanz.org.au/modsim2025/files/E02.wang.pdf |
E |
Energy, integrated infrastructure and urban planning |
E2 |
Decarbonisation of industrial processes |
W |
| Hayward J |
Optimisation of renewable electricity supply for brackish groundwater desalination in Western Australia |
Wu H, West S, Hayward J |
https://doi.org/10.36334/modsim2025.E03.wu |
https://mssanz.org.au/modsim2025/files/E03.wu.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
H |
| West S |
Optimisation of renewable electricity supply for brackish groundwater desalination in Western Australia |
Wu H, West S, Hayward J |
https://doi.org/10.36334/modsim2025.E03.wu |
https://mssanz.org.au/modsim2025/files/E03.wu.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
W |
| Wu H |
Optimisation of renewable electricity supply for brackish groundwater desalination in Western Australia |
Wu H, West S, Hayward J |
https://doi.org/10.36334/modsim2025.E03.wu |
https://mssanz.org.au/modsim2025/files/E03.wu.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
W |
| Mennecke L |
Optimising port–hinterland container transportation for resilience and sustainability |
Mennecke L, Pannek J, Papini M |
https://doi.org/10.36334/modsim2025.M01.mennecke |
https://mssanz.org.au/modsim2025/files/M01.mennecke.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
M |
| Pannek J |
Optimising port–hinterland container transportation for resilience and sustainability |
Mennecke L, Pannek J, Papini M |
https://doi.org/10.36334/modsim2025.M01.mennecke |
https://mssanz.org.au/modsim2025/files/M01.mennecke.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
P |
| Papini M |
Optimising port–hinterland container transportation for resilience and sustainability |
Mennecke L, Pannek J, Papini M |
https://doi.org/10.36334/modsim2025.M01.mennecke |
https://mssanz.org.au/modsim2025/files/M01.mennecke.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
P |
| Shepherd NE |
Optimising sugarcane fertiliser rates for modelling water quality in the Wet Tropics |
Shepherd NE |
https://doi.org/10.36334/modsim2025.L01.shepherd |
https://mssanz.org.au/modsim2025/files/L01.shepherd.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
S |
| Fan Z |
Optimizing sustainable water resource utilization of inter-basin water transfer under climate change |
Fan Z, Fu X, Li Y, Zhao X |
https://doi.org/10.36334/modsim2025.J08.fan |
https://mssanz.org.au/modsim2025/files/J08.fan.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
F |
| Fu X |
Optimizing sustainable water resource utilization of inter-basin water transfer under climate change |
Fan Z, Fu X, Li Y, Zhao X |
https://doi.org/10.36334/modsim2025.J08.fan |
https://mssanz.org.au/modsim2025/files/J08.fan.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
F |
| Li Y (Yu) |
Optimizing sustainable water resource utilization of inter-basin water transfer under climate change |
Fan Z, Fu X, Li Y, Zhao X |
https://doi.org/10.36334/modsim2025.J08.fan |
https://mssanz.org.au/modsim2025/files/J08.fan.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
L |
| Zhao X (Xiaodan) |
Optimizing sustainable water resource utilization of inter-basin water transfer under climate change |
Fan Z, Fu X, Li Y, Zhao X |
https://doi.org/10.36334/modsim2025.J08.fan |
https://mssanz.org.au/modsim2025/files/J08.fan.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
Z |
| Jayasinghe P |
Parameterisation of APSIM AgPasture for tropical pasture species; Brachiaria Mulato II and Gatton Panic |
Jayasinghe P, Pembleton KG |
https://doi.org/10.36334/modsim2025.B02.jayasinghe |
https://mssanz.org.au/modsim2025/files/B02.jayasinghe.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
J |
| Pembleton KG |
Parameterisation of APSIM AgPasture for tropical pasture species; Brachiaria Mulato II and Gatton Panic |
Jayasinghe P, Pembleton KG |
https://doi.org/10.36334/modsim2025.B02.jayasinghe |
https://mssanz.org.au/modsim2025/files/B02.jayasinghe.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
P |
| Strauch M |
ParetoPick-R; an interactive tool for turning multi-objective optimisation results into actionable solutions |
Wittekind CIH, Strauch M, Witing F, Volk M |
https://doi.org/10.36334/modsim2025.F05.wittekind |
https://mssanz.org.au/modsim2025/files/F05.wittekind.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
S |
| Volk M |
ParetoPick-R; an interactive tool for turning multi-objective optimisation results into actionable solutions |
Wittekind CIH, Strauch M, Witing F, Volk M |
https://doi.org/10.36334/modsim2025.F05.wittekind |
https://mssanz.org.au/modsim2025/files/F05.wittekind.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
V |
| Witing F |
ParetoPick-R; an interactive tool for turning multi-objective optimisation results into actionable solutions |
Wittekind CIH, Strauch M, Witing F, Volk M |
https://doi.org/10.36334/modsim2025.F05.wittekind |
https://mssanz.org.au/modsim2025/files/F05.wittekind.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
W |
| Wittekind CIH |
ParetoPick-R; an interactive tool for turning multi-objective optimisation results into actionable solutions |
Wittekind CIH, Strauch M, Witing F, Volk M |
https://doi.org/10.36334/modsim2025.F05.wittekind |
https://mssanz.org.au/modsim2025/files/F05.wittekind.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
W |
| Karunaratne S |
Partitioning soil organic carbon for Australian croplands |
Yang J, Paust C, Ugbaje S, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.yang |
https://mssanz.org.au/modsim2025/files/F13.yang.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
K |
| Paust C |
Partitioning soil organic carbon for Australian croplands |
Yang J, Paust C, Ugbaje S, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.yang |
https://mssanz.org.au/modsim2025/files/F13.yang.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
P |
| Ugbaje S |
Partitioning soil organic carbon for Australian croplands |
Yang J, Paust C, Ugbaje S, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.yang |
https://mssanz.org.au/modsim2025/files/F13.yang.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
U |
| Yang J |
Partitioning soil organic carbon for Australian croplands |
Yang J, Paust C, Ugbaje S, Karunaratne S |
https://doi.org/10.36334/modsim2025.F13.yang |
https://mssanz.org.au/modsim2025/files/F13.yang.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
Y |
| van der Merwe M |
Passive sonar sensor placement for undersea surveillance |
Weinberg GV, van der Merwe M |
https://doi.org/10.36334/modsim2025.M01.weinberg |
https://mssanz.org.au/modsim2025/files/M01.weinberg.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
v |
| Weinberg GV |
Passive sonar sensor placement for undersea surveillance |
Weinberg GV, van der Merwe M |
https://doi.org/10.36334/modsim2025.M01.weinberg |
https://mssanz.org.au/modsim2025/files/M01.weinberg.pdf |
M |
Operations Research |
M1 |
OR methods and applications |
W |
| Chen F |
Pathway of soil improvement through straw return to promote yield increase cannot be ignored |
Chen F |
https://doi.org/10.36334/modsim2025.B08.chenf |
https://mssanz.org.au/modsim2025/files/B08.chenf.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
C |
| Rodriguez D |
Pathways towards NetZero emissions in grain cropping farms |
Tan Z, Rodriguez D |
https://doi.org/10.36334/modsim2025.B05.tan |
https://mssanz.org.au/modsim2025/files/B05.tan.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
R |
| Tan Z |
Pathways towards NetZero emissions in grain cropping farms |
Tan Z, Rodriguez D |
https://doi.org/10.36334/modsim2025.B05.tan |
https://mssanz.org.au/modsim2025/files/B05.tan.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
T |
| La D |
Patient-level modelling of long-term cardiovascular and mortality outcomes in chronic kidney disease |
Tran‑Duy A, Srikhom S, La D, Nelson C, Manski‑Nankervis JA |
https://doi.org/10.36334/modsim2025.H05.tranduy |
https://mssanz.org.au/modsim2025/files/H05.tranduy.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
L |
| Manski‑Nankervis JA |
Patient-level modelling of long-term cardiovascular and mortality outcomes in chronic kidney disease |
Tran‑Duy A, Srikhom S, La D, Nelson C, Manski‑Nankervis JA |
https://doi.org/10.36334/modsim2025.H05.tranduy |
https://mssanz.org.au/modsim2025/files/H05.tranduy.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
M |
| Nelson C |
Patient-level modelling of long-term cardiovascular and mortality outcomes in chronic kidney disease |
Tran‑Duy A, Srikhom S, La D, Nelson C, Manski‑Nankervis JA |
https://doi.org/10.36334/modsim2025.H05.tranduy |
https://mssanz.org.au/modsim2025/files/H05.tranduy.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
N |
| Srikhom S |
Patient-level modelling of long-term cardiovascular and mortality outcomes in chronic kidney disease |
Tran‑Duy A, Srikhom S, La D, Nelson C, Manski‑Nankervis JA |
https://doi.org/10.36334/modsim2025.H05.tranduy |
https://mssanz.org.au/modsim2025/files/H05.tranduy.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
S |
| Tran‑Duy A |
Patient-level modelling of long-term cardiovascular and mortality outcomes in chronic kidney disease |
Tran‑Duy A, Srikhom S, La D, Nelson C, Manski‑Nankervis JA |
https://doi.org/10.36334/modsim2025.H05.tranduy |
https://mssanz.org.au/modsim2025/files/H05.tranduy.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
T |
| Knowling MJ |
PEST++SQP: a new, non-intrusive, open-source package for high-dimensional non-linear optimisation under uncertainty |
Macasieb RQ, Knowling MJ, White JT |
https://doi.org/10.36334/modsim2025.A04.macasieb |
https://mssanz.org.au/modsim2025/files/A04.macasieb.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
K |
| Macasieb RQ |
PEST++SQP: a new, non-intrusive, open-source package for high-dimensional non-linear optimisation under uncertainty |
Macasieb RQ, Knowling MJ, White JT |
https://doi.org/10.36334/modsim2025.A04.macasieb |
https://mssanz.org.au/modsim2025/files/A04.macasieb.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
M |
| White JT |
PEST++SQP: a new, non-intrusive, open-source package for high-dimensional non-linear optimisation under uncertainty |
Macasieb RQ, Knowling MJ, White JT |
https://doi.org/10.36334/modsim2025.A04.macasieb |
https://mssanz.org.au/modsim2025/files/A04.macasieb.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
W |
| Calderon‑Morales E |
Physically-based simulation of plant hydraulic transport and drought stress in Australian vegetation |
Stephens C, Medlyn B, Holzworth D, Knauer J, Inbar A, Williams L, Choat B, Peters J, Calderon‑Morales E, Nichols E, Pendall E |
https://doi.org/10.36334/modsim2025.F09.stephens |
https://mssanz.org.au/modsim2025/files/F09.stephens.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
C |
| Choat B |
Physically-based simulation of plant hydraulic transport and drought stress in Australian vegetation |
Stephens C, Medlyn B, Holzworth D, Knauer J, Inbar A, Williams L, Choat B, Peters J, Calderon‑Morales E, Nichols E, Pendall E |
https://doi.org/10.36334/modsim2025.F09.stephens |
https://mssanz.org.au/modsim2025/files/F09.stephens.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
C |
| Holzworth D |
Physically-based simulation of plant hydraulic transport and drought stress in Australian vegetation |
Stephens C, Medlyn B, Holzworth D, Knauer J, Inbar A, Williams L, Choat B, Peters J, Calderon‑Morales E, Nichols E, Pendall E |
https://doi.org/10.36334/modsim2025.F09.stephens |
https://mssanz.org.au/modsim2025/files/F09.stephens.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
H |
| Inbar A |
Physically-based simulation of plant hydraulic transport and drought stress in Australian vegetation |
Stephens C, Medlyn B, Holzworth D, Knauer J, Inbar A, Williams L, Choat B, Peters J, Calderon‑Morales E, Nichols E, Pendall E |
https://doi.org/10.36334/modsim2025.F09.stephens |
https://mssanz.org.au/modsim2025/files/F09.stephens.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
I |
| Knauer J |
Physically-based simulation of plant hydraulic transport and drought stress in Australian vegetation |
Stephens C, Medlyn B, Holzworth D, Knauer J, Inbar A, Williams L, Choat B, Peters J, Calderon‑Morales E, Nichols E, Pendall E |
https://doi.org/10.36334/modsim2025.F09.stephens |
https://mssanz.org.au/modsim2025/files/F09.stephens.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
K |
| Medlyn B |
Physically-based simulation of plant hydraulic transport and drought stress in Australian vegetation |
Stephens C, Medlyn B, Holzworth D, Knauer J, Inbar A, Williams L, Choat B, Peters J, Calderon‑Morales E, Nichols E, Pendall E |
https://doi.org/10.36334/modsim2025.F09.stephens |
https://mssanz.org.au/modsim2025/files/F09.stephens.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
M |
| Nichols E |
Physically-based simulation of plant hydraulic transport and drought stress in Australian vegetation |
Stephens C, Medlyn B, Holzworth D, Knauer J, Inbar A, Williams L, Choat B, Peters J, Calderon‑Morales E, Nichols E, Pendall E |
https://doi.org/10.36334/modsim2025.F09.stephens |
https://mssanz.org.au/modsim2025/files/F09.stephens.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
N |
| Pendall E |
Physically-based simulation of plant hydraulic transport and drought stress in Australian vegetation |
Stephens C, Medlyn B, Holzworth D, Knauer J, Inbar A, Williams L, Choat B, Peters J, Calderon‑Morales E, Nichols E, Pendall E |
https://doi.org/10.36334/modsim2025.F09.stephens |
https://mssanz.org.au/modsim2025/files/F09.stephens.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
P |
| Peters J |
Physically-based simulation of plant hydraulic transport and drought stress in Australian vegetation |
Stephens C, Medlyn B, Holzworth D, Knauer J, Inbar A, Williams L, Choat B, Peters J, Calderon‑Morales E, Nichols E, Pendall E |
https://doi.org/10.36334/modsim2025.F09.stephens |
https://mssanz.org.au/modsim2025/files/F09.stephens.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
P |
| Stephens C |
Physically-based simulation of plant hydraulic transport and drought stress in Australian vegetation |
Stephens C, Medlyn B, Holzworth D, Knauer J, Inbar A, Williams L, Choat B, Peters J, Calderon‑Morales E, Nichols E, Pendall E |
https://doi.org/10.36334/modsim2025.F09.stephens |
https://mssanz.org.au/modsim2025/files/F09.stephens.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
S |
| Williams L |
Physically-based simulation of plant hydraulic transport and drought stress in Australian vegetation |
Stephens C, Medlyn B, Holzworth D, Knauer J, Inbar A, Williams L, Choat B, Peters J, Calderon‑Morales E, Nichols E, Pendall E |
https://doi.org/10.36334/modsim2025.F09.stephens |
https://mssanz.org.au/modsim2025/files/F09.stephens.pdf |
F |
Environment and ecology |
F9 |
Ecological Forecasting: Advancing ecological theory and management in Oceania with near-term forecasts |
W |
| Feng P |
Physics-guided deep learning for crop phenology simulation |
Feng P |
https://doi.org/10.36334/modsim2025.B08.feng |
https://mssanz.org.au/modsim2025/files/B08.feng.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
F |
| Acosta CM |
Physics-informed graph neural networks for operational flood modelling |
Acosta CM, Herath HMVV, Saha A, Rasnayaka S, Marshall L |
https://doi.org/10.36334/modsim2025.J10.acosta |
https://mssanz.org.au/modsim2025/files/J10.acosta.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
A |
| Herath HMVV |
Physics-informed graph neural networks for operational flood modelling |
Acosta CM, Herath HMVV, Saha A, Rasnayaka S, Marshall L |
https://doi.org/10.36334/modsim2025.J10.acosta |
https://mssanz.org.au/modsim2025/files/J10.acosta.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
H |
| Marshall L |
Physics-informed graph neural networks for operational flood modelling |
Acosta CM, Herath HMVV, Saha A, Rasnayaka S, Marshall L |
https://doi.org/10.36334/modsim2025.J10.acosta |
https://mssanz.org.au/modsim2025/files/J10.acosta.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
M |
| Rasnayaka S |
Physics-informed graph neural networks for operational flood modelling |
Acosta CM, Herath HMVV, Saha A, Rasnayaka S, Marshall L |
https://doi.org/10.36334/modsim2025.J10.acosta |
https://mssanz.org.au/modsim2025/files/J10.acosta.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
R |
| Saha A |
Physics-informed graph neural networks for operational flood modelling |
Acosta CM, Herath HMVV, Saha A, Rasnayaka S, Marshall L |
https://doi.org/10.36334/modsim2025.J10.acosta |
https://mssanz.org.au/modsim2025/files/J10.acosta.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
S |
| Chryss A |
PipeTwin: A scalable framework for Digital Twin deployment in mineral suspension pipelines |
Xie P, Zheng E, Nguyen D, Chryss A, Hetherton L |
https://doi.org/10.36334/modsim2025.C03.xie |
https://mssanz.org.au/modsim2025/files/C03.xie.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
C |
| Hetherton L |
PipeTwin: A scalable framework for Digital Twin deployment in mineral suspension pipelines |
Xie P, Zheng E, Nguyen D, Chryss A, Hetherton L |
https://doi.org/10.36334/modsim2025.C03.xie |
https://mssanz.org.au/modsim2025/files/C03.xie.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
H |
| Nguyen D |
PipeTwin: A scalable framework for Digital Twin deployment in mineral suspension pipelines |
Xie P, Zheng E, Nguyen D, Chryss A, Hetherton L |
https://doi.org/10.36334/modsim2025.C03.xie |
https://mssanz.org.au/modsim2025/files/C03.xie.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
N |
| Xie P |
PipeTwin: A scalable framework for Digital Twin deployment in mineral suspension pipelines |
Xie P, Zheng E, Nguyen D, Chryss A, Hetherton L |
https://doi.org/10.36334/modsim2025.C03.xie |
https://mssanz.org.au/modsim2025/files/C03.xie.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
X |
| Zheng E |
PipeTwin: A scalable framework for Digital Twin deployment in mineral suspension pipelines |
Xie P, Zheng E, Nguyen D, Chryss A, Hetherton L |
https://doi.org/10.36334/modsim2025.C03.xie |
https://mssanz.org.au/modsim2025/files/C03.xie.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
Z |
| Zhai X |
Predicting flood event class using a novel class membership function and hydrological modeling |
Zhang Y, Zhang Y, Zhai X |
https://doi.org/10.36334/modsim2025.K08.zhangy |
https://mssanz.org.au/modsim2025/files/K08.zhangy.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
Z |
| Zhang Y (Yongqiang) |
Predicting flood event class using a novel class membership function and hydrological modeling |
Zhang Y, Zhang Y, Zhai X |
https://doi.org/10.36334/modsim2025.K08.zhangy |
https://mssanz.org.au/modsim2025/files/K08.zhangy.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
Z |
| Zhang Y (Yongyong) |
Predicting flood event class using a novel class membership function and hydrological modeling |
Zhang Y, Zhang Y, Zhai X |
https://doi.org/10.36334/modsim2025.K08.zhangy |
https://mssanz.org.au/modsim2025/files/K08.zhangy.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
Z |
| Huang Q |
Predicting global runoff and hydrological drought in 1991-2024 using the HBV-PML model |
Zhang Y, Wei H, Xu Z, Huang Q |
https://doi.org/10.36334/modsim2025.K08.zhang |
https://mssanz.org.au/modsim2025/files/K08.zhang.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
H |
| Wei H |
Predicting global runoff and hydrological drought in 1991-2024 using the HBV-PML model |
Zhang Y, Wei H, Xu Z, Huang Q |
https://doi.org/10.36334/modsim2025.K08.zhang |
https://mssanz.org.au/modsim2025/files/K08.zhang.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
W |
| Xu Z (Zhenwu) |
Predicting global runoff and hydrological drought in 1991-2024 using the HBV-PML model |
Zhang Y, Wei H, Xu Z, Huang Q |
https://doi.org/10.36334/modsim2025.K08.zhang |
https://mssanz.org.au/modsim2025/files/K08.zhang.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
X |
| Zhang Y (Yongqiang) |
Predicting global runoff and hydrological drought in 1991-2024 using the HBV-PML model |
Zhang Y, Wei H, Xu Z, Huang Q |
https://doi.org/10.36334/modsim2025.K08.zhang |
https://mssanz.org.au/modsim2025/files/K08.zhang.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
Z |
| Escribà‑Gelonch M |
Predicting lettuce biomass under six climate zones using machine learning in a digital twin system |
Liang S, Parvin MI, Long NVD, Escribà‑Gelonch M, Hessel V |
https://doi.org/10.36334/modsim2025.C03.liang |
https://mssanz.org.au/modsim2025/files/C03.liang.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
E |
| Hessel V |
Predicting lettuce biomass under six climate zones using machine learning in a digital twin system |
Liang S, Parvin MI, Long NVD, Escribà‑Gelonch M, Hessel V |
https://doi.org/10.36334/modsim2025.C03.liang |
https://mssanz.org.au/modsim2025/files/C03.liang.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
H |
| Liang S |
Predicting lettuce biomass under six climate zones using machine learning in a digital twin system |
Liang S, Parvin MI, Long NVD, Escribà‑Gelonch M, Hessel V |
https://doi.org/10.36334/modsim2025.C03.liang |
https://mssanz.org.au/modsim2025/files/C03.liang.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
L |
| Long NVD |
Predicting lettuce biomass under six climate zones using machine learning in a digital twin system |
Liang S, Parvin MI, Long NVD, Escribà‑Gelonch M, Hessel V |
https://doi.org/10.36334/modsim2025.C03.liang |
https://mssanz.org.au/modsim2025/files/C03.liang.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
L |
| Parvin MI |
Predicting lettuce biomass under six climate zones using machine learning in a digital twin system |
Liang S, Parvin MI, Long NVD, Escribà‑Gelonch M, Hessel V |
https://doi.org/10.36334/modsim2025.C03.liang |
https://mssanz.org.au/modsim2025/files/C03.liang.pdf |
C |
Computer science and engineering |
C3 |
Digital twins and mixed reality |
P |
| Lachireddy K |
Predictive modelling of Ross River virus in NSW |
Sumithra S, McLure A, Lal A, Lachireddy K |
https://doi.org/10.36334/modsim2025.H04.sumithra |
https://mssanz.org.au/modsim2025/files/H04.sumithra.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
L |
| Lal A |
Predictive modelling of Ross River virus in NSW |
Sumithra S, McLure A, Lal A, Lachireddy K |
https://doi.org/10.36334/modsim2025.H04.sumithra |
https://mssanz.org.au/modsim2025/files/H04.sumithra.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
L |
| McLure A |
Predictive modelling of Ross River virus in NSW |
Sumithra S, McLure A, Lal A, Lachireddy K |
https://doi.org/10.36334/modsim2025.H04.sumithra |
https://mssanz.org.au/modsim2025/files/H04.sumithra.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
M |
| Sumithra S |
Predictive modelling of Ross River virus in NSW |
Sumithra S, McLure A, Lal A, Lachireddy K |
https://doi.org/10.36334/modsim2025.H04.sumithra |
https://mssanz.org.au/modsim2025/files/H04.sumithra.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
S |
| Mitchard A |
Predictive power: Unlocking grid stability through solar forecasting |
Mitchard A |
https://doi.org/10.36334/modsim2025.E01.mitchard |
https://mssanz.org.au/modsim2025/files/E01.mitchard.pdf |
E |
Energy, integrated infrastructure and urban planning |
E1 |
Tools for the Energy Transition |
M |
| Brown H (Hamish) |
Prioritising investment in diverse horticulture cropping systems for water quality outcomes using APSIM Next Gen |
Reeves S H, Brown H, Oag D |
https://doi.org/10.36334/modsim2025.B05.reeves |
https://mssanz.org.au/modsim2025/files/B05.reeves.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
B |
| Oag D |
Prioritising investment in diverse horticulture cropping systems for water quality outcomes using APSIM Next Gen |
Reeves S H, Brown H, Oag D |
https://doi.org/10.36334/modsim2025.B05.reeves |
https://mssanz.org.au/modsim2025/files/B05.reeves.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
O |
| Reeves SH |
Prioritising investment in diverse horticulture cropping systems for water quality outcomes using APSIM Next Gen |
Reeves S H, Brown H, Oag D |
https://doi.org/10.36334/modsim2025.B05.reeves |
https://mssanz.org.au/modsim2025/files/B05.reeves.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
R |
| Marshall L |
Probabilistic thinking in environmental modelling and leadership |
Marshall L |
https://doi.org/10.36334/modsim2025.P04.marshall |
https://mssanz.org.au/modsim2025/files/P04.marshall.pdf |
P |
Plenary |
P4 |
Plenary |
M |
| Athukorala R |
Process-informed stepwise multi-variable SWAT calibration framework |
Nervi E, Athukorala R, van Ogtrop F, Vervoort RW |
https://doi.org/10.36334/modsim2025.J10.nervi |
https://mssanz.org.au/modsim2025/files/J10.nervi.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
A |
| Nervi E |
Process-informed stepwise multi-variable SWAT calibration framework |
Nervi E, Athukorala R, van Ogtrop F, Vervoort RW |
https://doi.org/10.36334/modsim2025.J10.nervi |
https://mssanz.org.au/modsim2025/files/J10.nervi.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
N |
| van Ogtrop F |
Process-informed stepwise multi-variable SWAT calibration framework |
Nervi E, Athukorala R, van Ogtrop F, Vervoort RW |
https://doi.org/10.36334/modsim2025.J10.nervi |
https://mssanz.org.au/modsim2025/files/J10.nervi.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
v |
| Vervoort RW |
Process-informed stepwise multi-variable SWAT calibration framework |
Nervi E, Athukorala R, van Ogtrop F, Vervoort RW |
https://doi.org/10.36334/modsim2025.J10.nervi |
https://mssanz.org.au/modsim2025/files/J10.nervi.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
V |
| Medlyn B |
Projected changes in biomass carbon under future climate scenarios in semi-arid southeastern Australia |
Wang B, Smith B, Waters C, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.wang |
https://mssanz.org.au/modsim2025/files/F12.wang.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
M |
| Smith B |
Projected changes in biomass carbon under future climate scenarios in semi-arid southeastern Australia |
Wang B, Smith B, Waters C, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.wang |
https://mssanz.org.au/modsim2025/files/F12.wang.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
S |
| Wang B (Bin) |
Projected changes in biomass carbon under future climate scenarios in semi-arid southeastern Australia |
Wang B, Smith B, Waters C, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.wang |
https://mssanz.org.au/modsim2025/files/F12.wang.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
W |
| Waters C |
Projected changes in biomass carbon under future climate scenarios in semi-arid southeastern Australia |
Wang B, Smith B, Waters C, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.wang |
https://mssanz.org.au/modsim2025/files/F12.wang.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
W |
| Ma Y (Yuxin) |
Projecting future changes in soil organic carbon across New South Wales using machine learning and climate projections |
Ma Y, Yang X |
https://doi.org/10.36334/modsim2025.F13.ma |
https://mssanz.org.au/modsim2025/files/F13.ma.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
M |
| Yang X |
Projecting future changes in soil organic carbon across New South Wales using machine learning and climate projections |
Ma Y, Yang X |
https://doi.org/10.36334/modsim2025.F13.ma |
https://mssanz.org.au/modsim2025/files/F13.ma.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
Y |
| Bayer P |
Projections of global groundwater temperatures due to climate change |
Irvine DJ, Benz SA, Rau GC, Bayer P, Menberg K, Blum P, Jamieson RC, Griebler C, Kurylyk BL |
https://doi.org/10.36334/modsim2025.G04.irvine |
https://mssanz.org.au/modsim2025/files/G04.irvine.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
B |
| Benz SA |
Projections of global groundwater temperatures due to climate change |
Irvine DJ, Benz SA, Rau GC, Bayer P, Menberg K, Blum P, Jamieson RC, Griebler C, Kurylyk BL |
https://doi.org/10.36334/modsim2025.G04.irvine |
https://mssanz.org.au/modsim2025/files/G04.irvine.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
B |
| Blum P |
Projections of global groundwater temperatures due to climate change |
Irvine DJ, Benz SA, Rau GC, Bayer P, Menberg K, Blum P, Jamieson RC, Griebler C, Kurylyk BL |
https://doi.org/10.36334/modsim2025.G04.irvine |
https://mssanz.org.au/modsim2025/files/G04.irvine.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
B |
| Griebler C |
Projections of global groundwater temperatures due to climate change |
Irvine DJ, Benz SA, Rau GC, Bayer P, Menberg K, Blum P, Jamieson RC, Griebler C, Kurylyk BL |
https://doi.org/10.36334/modsim2025.G04.irvine |
https://mssanz.org.au/modsim2025/files/G04.irvine.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
G |
| Irvine DJ |
Projections of global groundwater temperatures due to climate change |
Irvine DJ, Benz SA, Rau GC, Bayer P, Menberg K, Blum P, Jamieson RC, Griebler C, Kurylyk BL |
https://doi.org/10.36334/modsim2025.G04.irvine |
https://mssanz.org.au/modsim2025/files/G04.irvine.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
I |
| Jamieson RC |
Projections of global groundwater temperatures due to climate change |
Irvine DJ, Benz SA, Rau GC, Bayer P, Menberg K, Blum P, Jamieson RC, Griebler C, Kurylyk BL |
https://doi.org/10.36334/modsim2025.G04.irvine |
https://mssanz.org.au/modsim2025/files/G04.irvine.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
J |
| Kurylyk BL |
Projections of global groundwater temperatures due to climate change |
Irvine DJ, Benz SA, Rau GC, Bayer P, Menberg K, Blum P, Jamieson RC, Griebler C, Kurylyk BL |
https://doi.org/10.36334/modsim2025.G04.irvine |
https://mssanz.org.au/modsim2025/files/G04.irvine.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
K |
| Menberg K |
Projections of global groundwater temperatures due to climate change |
Irvine DJ, Benz SA, Rau GC, Bayer P, Menberg K, Blum P, Jamieson RC, Griebler C, Kurylyk BL |
https://doi.org/10.36334/modsim2025.G04.irvine |
https://mssanz.org.au/modsim2025/files/G04.irvine.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
M |
| Rau GC |
Projections of global groundwater temperatures due to climate change |
Irvine DJ, Benz SA, Rau GC, Bayer P, Menberg K, Blum P, Jamieson RC, Griebler C, Kurylyk BL |
https://doi.org/10.36334/modsim2025.G04.irvine |
https://mssanz.org.au/modsim2025/files/G04.irvine.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
R |
| Baasch J |
Protecting Australia's investment in the National Hydrological Modelling Platform |
Baasch J, Green T, Roberts T, Someth P, Tirupathi N |
https://doi.org/10.36334/modsim2025.J02.baasch |
https://mssanz.org.au/modsim2025/files/J02.baasch.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
B |
| Green T |
Protecting Australia's investment in the National Hydrological Modelling Platform |
Baasch J, Green T, Roberts T, Someth P, Tirupathi N |
https://doi.org/10.36334/modsim2025.J02.baasch |
https://mssanz.org.au/modsim2025/files/J02.baasch.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
G |
| Roberts T |
Protecting Australia's investment in the National Hydrological Modelling Platform |
Baasch J, Green T, Roberts T, Someth P, Tirupathi N |
https://doi.org/10.36334/modsim2025.J02.baasch |
https://mssanz.org.au/modsim2025/files/J02.baasch.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
R |
| Someth P |
Protecting Australia's investment in the National Hydrological Modelling Platform |
Baasch J, Green T, Roberts T, Someth P, Tirupathi N |
https://doi.org/10.36334/modsim2025.J02.baasch |
https://mssanz.org.au/modsim2025/files/J02.baasch.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
S |
| Tirupathi N |
Protecting Australia's investment in the National Hydrological Modelling Platform |
Baasch J, Green T, Roberts T, Someth P, Tirupathi N |
https://doi.org/10.36334/modsim2025.J02.baasch |
https://mssanz.org.au/modsim2025/files/J02.baasch.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
T |
| Chen M (Min) |
PyGeoModel: A python package for integrating intelligent geographic model services into Jupyter's computing environment |
Ma P, Chen M |
https://doi.org/10.36334/modsim2025.C04.ma |
https://mssanz.org.au/modsim2025/files/C04.ma.pdf |
C |
Computer science and engineering |
C4 |
Open and intelligent modeling and simulation |
C |
| Ma P |
PyGeoModel: A python package for integrating intelligent geographic model services into Jupyter's computing environment |
Ma P, Chen M |
https://doi.org/10.36334/modsim2025.C04.ma |
https://mssanz.org.au/modsim2025/files/C04.ma.pdf |
C |
Computer science and engineering |
C4 |
Open and intelligent modeling and simulation |
M |
| Cox I |
Qualitative network modelling to assess climate-sensitive vibrio and antimicrobial resistance in Tasmanian oyster supply chain |
Subramaniam RC, Cox I, Onyango E |
https://doi.org/10.36334/modsim2025.H04.subramaniam |
https://mssanz.org.au/modsim2025/files/H04.subramaniam.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
C |
| Onyango E |
Qualitative network modelling to assess climate-sensitive vibrio and antimicrobial resistance in Tasmanian oyster supply chain |
Subramaniam RC, Cox I, Onyango E |
https://doi.org/10.36334/modsim2025.H04.subramaniam |
https://mssanz.org.au/modsim2025/files/H04.subramaniam.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
O |
| Subramaniam RC |
Qualitative network modelling to assess climate-sensitive vibrio and antimicrobial resistance in Tasmanian oyster supply chain |
Subramaniam RC, Cox I, Onyango E |
https://doi.org/10.36334/modsim2025.H04.subramaniam |
https://mssanz.org.au/modsim2025/files/H04.subramaniam.pdf |
H |
Health and biosecurity |
H4 |
Modelling the impact of environmental pressures on vector-borne and zoonotic disease burdens |
S |
| Ren Y (Yi) |
Quantifying annotator reliability in moral classification of texts |
Ren Y |
https://doi.org/10.36334/modsim2025.A03.ren |
https://mssanz.org.au/modsim2025/files/A03.ren.pdf |
A |
Applied and computational mathematics |
A3 |
Modelling and simulation for trustworthy data science on challenging datasets |
R |
| Fisher R |
Quantifying parameter sensitivity in Ecopath with Ecosim Ecotracer models using a new Python wrapper |
Tan D, Koppel D, Iwanaga T, Fisher R, Haller‑Bull V, Matthews S |
https://doi.org/10.36334/modsim2025.B06.tan |
https://mssanz.org.au/modsim2025/files/B06.tan.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
F |
| Haller‑Bull V |
Quantifying parameter sensitivity in Ecopath with Ecosim Ecotracer models using a new Python wrapper |
Tan D, Koppel D, Iwanaga T, Fisher R, Haller‑Bull V, Matthews S |
https://doi.org/10.36334/modsim2025.B06.tan |
https://mssanz.org.au/modsim2025/files/B06.tan.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
H |
| Iwanaga T |
Quantifying parameter sensitivity in Ecopath with Ecosim Ecotracer models using a new Python wrapper |
Tan D, Koppel D, Iwanaga T, Fisher R, Haller‑Bull V, Matthews S |
https://doi.org/10.36334/modsim2025.B06.tan |
https://mssanz.org.au/modsim2025/files/B06.tan.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
I |
| Koppel D |
Quantifying parameter sensitivity in Ecopath with Ecosim Ecotracer models using a new Python wrapper |
Tan D, Koppel D, Iwanaga T, Fisher R, Haller‑Bull V, Matthews S |
https://doi.org/10.36334/modsim2025.B06.tan |
https://mssanz.org.au/modsim2025/files/B06.tan.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
K |
| Matthews S |
Quantifying parameter sensitivity in Ecopath with Ecosim Ecotracer models using a new Python wrapper |
Tan D, Koppel D, Iwanaga T, Fisher R, Haller‑Bull V, Matthews S |
https://doi.org/10.36334/modsim2025.B06.tan |
https://mssanz.org.au/modsim2025/files/B06.tan.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
M |
| Tan D (Daniel) |
Quantifying parameter sensitivity in Ecopath with Ecosim Ecotracer models using a new Python wrapper |
Tan D, Koppel D, Iwanaga T, Fisher R, Haller‑Bull V, Matthews S |
https://doi.org/10.36334/modsim2025.B06.tan |
https://mssanz.org.au/modsim2025/files/B06.tan.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
T |
| Peel MC |
Quantifying the global impact of atmospheric rivers on the recurrence of flood events |
Pradhan S, Wasko C, Peel MC |
https://doi.org/10.36334/modsim2025.K07.pradhan |
https://mssanz.org.au/modsim2025/files/K07.pradhan.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
P |
| Pradhan S |
Quantifying the global impact of atmospheric rivers on the recurrence of flood events |
Pradhan S, Wasko C, Peel MC |
https://doi.org/10.36334/modsim2025.K07.pradhan |
https://mssanz.org.au/modsim2025/files/K07.pradhan.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
P |
| Wasko C |
Quantifying the global impact of atmospheric rivers on the recurrence of flood events |
Pradhan S, Wasko C, Peel MC |
https://doi.org/10.36334/modsim2025.K07.pradhan |
https://mssanz.org.au/modsim2025/files/K07.pradhan.pdf |
K |
Hydroclimate |
K7 |
Understanding hydrological extremes: trends, drivers and impacts |
W |
| Chen Y (Yuqing) |
Quantifying vegetation and soil organic carbon and their drivers in dryland ecosystems of Northwest, China |
Chen Y, Xi H, Zhu M, Wang B, Cheng W, Hao Y, Qu L, Wang Z |
https://doi.org/10.36334/modsim2025.B08.chen |
https://mssanz.org.au/modsim2025/files/B08.chen.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
C |
| Cheng W (Wenju) |
Quantifying vegetation and soil organic carbon and their drivers in dryland ecosystems of Northwest, China |
Chen Y, Xi H, Zhu M, Wang B, Cheng W, Hao Y, Qu L, Wang Z |
https://doi.org/10.36334/modsim2025.B08.chen |
https://mssanz.org.au/modsim2025/files/B08.chen.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
C |
| Hao Y (Yulian) |
Quantifying vegetation and soil organic carbon and their drivers in dryland ecosystems of Northwest, China |
Chen Y, Xi H, Zhu M, Wang B, Cheng W, Hao Y, Qu L, Wang Z |
https://doi.org/10.36334/modsim2025.B08.chen |
https://mssanz.org.au/modsim2025/files/B08.chen.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
H |
| Qu L (Linbo) |
Quantifying vegetation and soil organic carbon and their drivers in dryland ecosystems of Northwest, China |
Chen Y, Xi H, Zhu M, Wang B, Cheng W, Hao Y, Qu L, Wang Z |
https://doi.org/10.36334/modsim2025.B08.chen |
https://mssanz.org.au/modsim2025/files/B08.chen.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
Q |
| Wang B (Bin) |
Quantifying vegetation and soil organic carbon and their drivers in dryland ecosystems of Northwest, China |
Chen Y, Xi H, Zhu M, Wang B, Cheng W, Hao Y, Qu L, Wang Z |
https://doi.org/10.36334/modsim2025.B08.chen |
https://mssanz.org.au/modsim2025/files/B08.chen.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
W |
| Wang Z (Zhehui) |
Quantifying vegetation and soil organic carbon and their drivers in dryland ecosystems of Northwest, China |
Chen Y, Xi H, Zhu M, Wang B, Cheng W, Hao Y, Qu L, Wang Z |
https://doi.org/10.36334/modsim2025.B08.chen |
https://mssanz.org.au/modsim2025/files/B08.chen.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
W |
| Xi H (Haiyang) |
Quantifying vegetation and soil organic carbon and their drivers in dryland ecosystems of Northwest, China |
Chen Y, Xi H, Zhu M, Wang B, Cheng W, Hao Y, Qu L, Wang Z |
https://doi.org/10.36334/modsim2025.B08.chen |
https://mssanz.org.au/modsim2025/files/B08.chen.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
X |
| Zhu M (Meng) |
Quantifying vegetation and soil organic carbon and their drivers in dryland ecosystems of Northwest, China |
Chen Y, Xi H, Zhu M, Wang B, Cheng W, Hao Y, Qu L, Wang Z |
https://doi.org/10.36334/modsim2025.B08.chen |
https://mssanz.org.au/modsim2025/files/B08.chen.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
Z |
| Austin K |
Quantitative evaluation of the influence of rainfall runoff model parameter uncertainty |
Jordan P, Scorah M, Thu KS, Finger M, Cheng X, Szabo K, Nathan R, Austin K |
https://doi.org/10.36334/modsim2025.J08.jordan |
https://mssanz.org.au/modsim2025/files/J08.jordan.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
A |
| Cheng X (Xiang) |
Quantitative evaluation of the influence of rainfall runoff model parameter uncertainty |
Jordan P, Scorah M, Thu KS, Finger M, Cheng X, Szabo K, Nathan R, Austin K |
https://doi.org/10.36334/modsim2025.J08.jordan |
https://mssanz.org.au/modsim2025/files/J08.jordan.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
C |
| Finger M |
Quantitative evaluation of the influence of rainfall runoff model parameter uncertainty |
Jordan P, Scorah M, Thu KS, Finger M, Cheng X, Szabo K, Nathan R, Austin K |
https://doi.org/10.36334/modsim2025.J08.jordan |
https://mssanz.org.au/modsim2025/files/J08.jordan.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
F |
| Jordan P |
Quantitative evaluation of the influence of rainfall runoff model parameter uncertainty |
Jordan P, Scorah M, Thu KS, Finger M, Cheng X, Szabo K, Nathan R, Austin K |
https://doi.org/10.36334/modsim2025.J08.jordan |
https://mssanz.org.au/modsim2025/files/J08.jordan.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
J |
| Nathan R |
Quantitative evaluation of the influence of rainfall runoff model parameter uncertainty |
Jordan P, Scorah M, Thu KS, Finger M, Cheng X, Szabo K, Nathan R, Austin K |
https://doi.org/10.36334/modsim2025.J08.jordan |
https://mssanz.org.au/modsim2025/files/J08.jordan.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
N |
| Scorah M |
Quantitative evaluation of the influence of rainfall runoff model parameter uncertainty |
Jordan P, Scorah M, Thu KS, Finger M, Cheng X, Szabo K, Nathan R, Austin K |
https://doi.org/10.36334/modsim2025.J08.jordan |
https://mssanz.org.au/modsim2025/files/J08.jordan.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
S |
| Szabo K |
Quantitative evaluation of the influence of rainfall runoff model parameter uncertainty |
Jordan P, Scorah M, Thu KS, Finger M, Cheng X, Szabo K, Nathan R, Austin K |
https://doi.org/10.36334/modsim2025.J08.jordan |
https://mssanz.org.au/modsim2025/files/J08.jordan.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
S |
| Thu KS |
Quantitative evaluation of the influence of rainfall runoff model parameter uncertainty |
Jordan P, Scorah M, Thu KS, Finger M, Cheng X, Szabo K, Nathan R, Austin K |
https://doi.org/10.36334/modsim2025.J08.jordan |
https://mssanz.org.au/modsim2025/files/J08.jordan.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
T |
| Arora M |
Rainfall-based estimation of fertiliser nitrogen inputs and their influence on stream nitrogen in Victorian catchments |
Babatunde O, Arora M, Nara SNV, Guo D, Cartwright I, Western AW |
https://doi.org/10.36334/modsim2025.L01.babatunde |
https://mssanz.org.au/modsim2025/files/L01.babatunde.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
A |
| Babatunde O |
Rainfall-based estimation of fertiliser nitrogen inputs and their influence on stream nitrogen in Victorian catchments |
Babatunde O, Arora M, Nara SNV, Guo D, Cartwright I, Western AW |
https://doi.org/10.36334/modsim2025.L01.babatunde |
https://mssanz.org.au/modsim2025/files/L01.babatunde.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
B |
| Cartwright I |
Rainfall-based estimation of fertiliser nitrogen inputs and their influence on stream nitrogen in Victorian catchments |
Babatunde O, Arora M, Nara SNV, Guo D, Cartwright I, Western AW |
https://doi.org/10.36334/modsim2025.L01.babatunde |
https://mssanz.org.au/modsim2025/files/L01.babatunde.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
C |
| Guo D (Danlu) |
Rainfall-based estimation of fertiliser nitrogen inputs and their influence on stream nitrogen in Victorian catchments |
Babatunde O, Arora M, Nara SNV, Guo D, Cartwright I, Western AW |
https://doi.org/10.36334/modsim2025.L01.babatunde |
https://mssanz.org.au/modsim2025/files/L01.babatunde.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
G |
| Nara SNV |
Rainfall-based estimation of fertiliser nitrogen inputs and their influence on stream nitrogen in Victorian catchments |
Babatunde O, Arora M, Nara SNV, Guo D, Cartwright I, Western AW |
https://doi.org/10.36334/modsim2025.L01.babatunde |
https://mssanz.org.au/modsim2025/files/L01.babatunde.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
N |
| Western AW |
Rainfall-based estimation of fertiliser nitrogen inputs and their influence on stream nitrogen in Victorian catchments |
Babatunde O, Arora M, Nara SNV, Guo D, Cartwright I, Western AW |
https://doi.org/10.36334/modsim2025.L01.babatunde |
https://mssanz.org.au/modsim2025/files/L01.babatunde.pdf |
L |
Water quality |
L1 |
Catchment Water Quality Modelling |
W |
| Brooks S |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble R, Sengupta A, Dunlop M, Melbourne-Thomas J, Round V, Hopkins M, Pritchard J, Davies M, Brooks S, Gibbs M, Dupuy M, Gao S, O'Sullivan J, Stratford D, King A, Doody T |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
B |
| Davies M |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble R, Sengupta A, Dunlop M, Melbourne-Thomas J, Round V, Hopkins M, Pritchard J, Davies M, Brooks S, Gibbs M, Dupuy M, Gao S, O'Sullivan J, Stratford D, King A, Doody T |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
D |
| Doble R |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble K, Crosbie R, McCallum J |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
D |
| Doody T |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble R, Sengupta A, Dunlop M, Melbourne-Thomas J, Round V, Hopkins M, Pritchard J, Davies M, Brooks S, Gibbs M, Dupuy M, Gao S, O'Sullivan J, Stratford D, King A, Doody T |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
D |
| Dunlop M |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble K, Crosbie R, McCallum J |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
D |
| Dupuy M |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble R, Sengupta A, Dunlop M, Melbourne-Thomas J, Round V, Hopkins M, Pritchard J, Davies M, Brooks S, Gibbs M, Dupuy M, Gao S, O'Sullivan J, Stratford D, King A, Doody T |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
D |
| Gao S (Sicong) |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble R, Sengupta A, Dunlop M, Melbourne-Thomas J, Round V, Hopkins M, Pritchard J, Davies M, Brooks S, Gibbs M, Dupuy M, Gao S, O'Sullivan J, Stratford D, King A, Doody T |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
G |
| Gibbs MS |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble R, Sengupta A, Dunlop M, Melbourne-Thomas J, Round V, Hopkins M, Pritchard J, Davies M, Brooks S, Gibbs M, Dupuy M, Gao S, O'Sullivan J, Stratford D, King A, Doody T |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
G |
| Hopkins M |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble R, Sengupta A, Dunlop M, Melbourne-Thomas J, Round V, Hopkins M, Pritchard J, Davies M, Brooks S, Gibbs M, Dupuy M, Gao S, O'Sullivan J, Stratford D, King A, Doody T |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
H |
| King A |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble R, Sengupta A, Dunlop M, Melbourne-Thomas J, Round V, Hopkins M, Pritchard J, Davies M, Brooks S, Gibbs M, Dupuy M, Gao S, O'Sullivan J, Stratford D, King A, Doody T |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
K |
| Melbourne-Thomas J |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble R, Sengupta A, Dunlop M, Melbourne-Thomas J, Round V, Hopkins M, Pritchard J, Davies M, Brooks S, Gibbs M, Dupuy M, Gao S, O'Sullivan J, Stratford D, King A, Doody T |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
M |
| O'Sullivan J |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble R, Sengupta A, Dunlop M, Melbourne-Thomas J, Round V, Hopkins M, Pritchard J, Davies M, Brooks S, Gibbs M, Dupuy M, Gao S, O'Sullivan J, Stratford D, King A, Doody T |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
O |
| Pritchard J |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble R, Sengupta A, Dunlop M, Melbourne-Thomas J, Round V, Hopkins M, Pritchard J, Davies M, Brooks S, Gibbs M, Dupuy M, Gao S, O'Sullivan J, Stratford D, King A, Doody T |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
P |
| Round V |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble R, Sengupta A, Dunlop M, Melbourne-Thomas J, Round V, Hopkins M, Pritchard J, Davies M, Brooks S, Gibbs M, Dupuy M, Gao S, O'Sullivan J, Stratford D, King A, Doody T |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
R |
| Sengupta A |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble K, Crosbie R, McCallum J |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
S |
| Stratford D |
Ramsar wetland climate adaptation: lessons learnt from a participatory process |
Doble R, Sengupta A, Dunlop M, Melbourne-Thomas J, Round V, Hopkins M, Pritchard J, Davies M, Brooks S, Gibbs M, Dupuy M, Gao S, O'Sullivan J, Stratford D, King A, Doody T |
https://doi.org/10.36334/modsim2025.K01.doble |
https://mssanz.org.au/modsim2025/files/K01.doble.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
S |
| Robertson DE |
Rapid assessment of environmental flow targets using Bayesian logistic regression |
Schepen A, Robertson DE |
https://doi.org/10.36334/modsim2025.J08.schepen |
https://mssanz.org.au/modsim2025/files/J08.schepen.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
R |
| Schepen A |
Rapid assessment of environmental flow targets using Bayesian logistic regression |
Schepen A, Robertson DE |
https://doi.org/10.36334/modsim2025.J08.schepen |
https://mssanz.org.au/modsim2025/files/J08.schepen.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
S |
| Bakharia A |
Ready or not, here AI comes: Meaningful AI integration needs collaboration of universities and industry |
Egger F, O’Brien K, Bakharia A, Miller L, Cuthbert S, Francey M |
https://doi.org/10.36334/modsim2025.I04.egger |
https://mssanz.org.au/modsim2025/files/I04.egger.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
B |
| Cuthbert S |
Ready or not, here AI comes: Meaningful AI integration needs collaboration of universities and industry |
Egger F, O’Brien K, Bakharia A, Miller L, Cuthbert S, Francey M |
https://doi.org/10.36334/modsim2025.I04.egger |
https://mssanz.org.au/modsim2025/files/I04.egger.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
C |
| Egger F |
Ready or not, here AI comes: Meaningful AI integration needs collaboration of universities and industry |
Egger F, O’Brien K, Bakharia A, Miller L, Cuthbert S, Francey M |
https://doi.org/10.36334/modsim2025.I04.egger |
https://mssanz.org.au/modsim2025/files/I04.egger.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
E |
| Francey M |
Ready or not, here AI comes: Meaningful AI integration needs collaboration of universities and industry |
Egger F, O’Brien K, Bakharia A, Miller L, Cuthbert S, Francey M |
https://doi.org/10.36334/modsim2025.I04.egger |
https://mssanz.org.au/modsim2025/files/I04.egger.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
F |
| Miller L |
Ready or not, here AI comes: Meaningful AI integration needs collaboration of universities and industry |
Egger F, O’Brien K, Bakharia A, Miller L, Cuthbert S, Francey M |
https://doi.org/10.36334/modsim2025.I04.egger |
https://mssanz.org.au/modsim2025/files/I04.egger.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
M |
| O’Brien KR |
Ready or not, here AI comes: Meaningful AI integration needs collaboration of universities and industry |
Egger F, O’Brien K, Bakharia A, Miller L, Cuthbert S, Francey M |
https://doi.org/10.36334/modsim2025.I04.egger |
https://mssanz.org.au/modsim2025/files/I04.egger.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
O |
| Allen DE |
Realised volatility estimation shortcuts: An empirical analysis |
Allen DE, Chang C, Ng KH, Peiris S |
https://doi.org/10.36334/modsim2025.D02.allen |
https://mssanz.org.au/modsim2025/files/D02.allen.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
A |
| Chang C-L |
Realised volatility estimation shortcuts: An empirical analysis |
Allen DE, Chang C, Ng KH, Peiris S |
https://doi.org/10.36334/modsim2025.D02.allen |
https://mssanz.org.au/modsim2025/files/D02.allen.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
C |
| Ng KH |
Realised volatility estimation shortcuts: An empirical analysis |
Allen DE, Chang C, Ng KH, Peiris S |
https://doi.org/10.36334/modsim2025.D02.allen |
https://mssanz.org.au/modsim2025/files/D02.allen.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
N |
| Peiris S |
Realised volatility estimation shortcuts: An empirical analysis |
Allen DE, Chang C, Ng KH, Peiris S |
https://doi.org/10.36334/modsim2025.D02.allen |
https://mssanz.org.au/modsim2025/files/D02.allen.pdf |
D |
Economics and finance |
D2 |
Modelling Risk Management, ESG, Climate Finance, Policy Evaluation, and Tourism Economics |
P |
| Burns MJ |
Real-time hydrological-hydraulic hybrid modelling to inform smart management of urban flow regimes |
Zhang L, Burns MJ, Russell KL, Xu WD, Fletcher TD |
https://doi.org/10.36334/modsim2025.J09.zhang |
https://mssanz.org.au/modsim2025/files/J09.zhang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
B |
| Fletcher TD |
Real-time hydrological-hydraulic hybrid modelling to inform smart management of urban flow regimes |
Zhang L, Burns MJ, Russell KL, Xu WD, Fletcher TD |
https://doi.org/10.36334/modsim2025.J09.zhang |
https://mssanz.org.au/modsim2025/files/J09.zhang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
F |
| Russell KL |
Real-time hydrological-hydraulic hybrid modelling to inform smart management of urban flow regimes |
Zhang L, Burns MJ, Russell KL, Xu WD, Fletcher TD |
https://doi.org/10.36334/modsim2025.J09.zhang |
https://mssanz.org.au/modsim2025/files/J09.zhang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
R |
| Xu WD |
Real-time hydrological-hydraulic hybrid modelling to inform smart management of urban flow regimes |
Zhang L, Burns MJ, Russell KL, Xu WD, Fletcher TD |
https://doi.org/10.36334/modsim2025.J09.zhang |
https://mssanz.org.au/modsim2025/files/J09.zhang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
X |
| Zhang L (Lin) |
Real-time hydrological-hydraulic hybrid modelling to inform smart management of urban flow regimes |
Zhang L, Burns MJ, Russell KL, Xu WD, Fletcher TD |
https://doi.org/10.36334/modsim2025.J09.zhang |
https://mssanz.org.au/modsim2025/files/J09.zhang.pdf |
J |
Water resources |
J9 |
Challenges, new concepts and new methods for water resources management |
Z |
| Edmunds P |
Real-time water quality forecasting in rivers using satellite data and dynamic models (INVITED SPEAKER) |
Whitehead PG, Edmunds P |
https://doi.org/10.36334/modsim2025.L02.whitehead |
https://mssanz.org.au/modsim2025/files/L02.whitehead.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
E |
| Whitehead PG |
Real-time water quality forecasting in rivers using satellite data and dynamic models (INVITED SPEAKER) |
Whitehead PG, Edmunds P |
https://doi.org/10.36334/modsim2025.L02.whitehead |
https://mssanz.org.au/modsim2025/files/L02.whitehead.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
W |
| Holzworth D |
Redesigning the APSIM test and deployment system to bring benefits to developers |
Paroz A, Rich J, Holzworth D, Huth N |
https://doi.org/10.36334/modsim2025.B04.paroz |
https://mssanz.org.au/modsim2025/files/B04.paroz.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
H |
| Huth N |
Redesigning the APSIM test and deployment system to bring benefits to developers |
Paroz A, Rich J, Holzworth D, Huth N |
https://doi.org/10.36334/modsim2025.B04.paroz |
https://mssanz.org.au/modsim2025/files/B04.paroz.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
H |
| Paroz A |
Redesigning the APSIM test and deployment system to bring benefits to developers |
Paroz A, Rich J, Holzworth D, Huth N |
https://doi.org/10.36334/modsim2025.B04.paroz |
https://mssanz.org.au/modsim2025/files/B04.paroz.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
P |
| Rich J |
Redesigning the APSIM test and deployment system to bring benefits to developers |
Paroz A, Rich J, Holzworth D, Huth N |
https://doi.org/10.36334/modsim2025.B04.paroz |
https://mssanz.org.au/modsim2025/files/B04.paroz.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
R |
| Grier B |
Reef depth as a robust reef characteristic for intervention planning |
Grier B, Iwanaga T |
https://doi.org/10.36334/modsim2025.F05.grier |
https://mssanz.org.au/modsim2025/files/F05.grier.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
G |
| Iwanaga T |
Reef depth as a robust reef characteristic for intervention planning |
Grier B, Iwanaga T |
https://doi.org/10.36334/modsim2025.F05.grier |
https://mssanz.org.au/modsim2025/files/F05.grier.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
I |
| Hore-Lacy W |
Refining the Value-Ag framework for innovation impact evaluation in smallholder agrifood systems |
Monjardino M, Hore-Lacy W |
https://doi.org/10.36334/modsim2025.B06.monjardino |
https://mssanz.org.au/modsim2025/files/B06.monjardino.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
H |
| Monjardino M |
Refining the Value-Ag framework for innovation impact evaluation in smallholder agrifood systems |
Monjardino M, Hore-Lacy W |
https://doi.org/10.36334/modsim2025.B06.monjardino |
https://mssanz.org.au/modsim2025/files/B06.monjardino.pdf |
B |
Biological systems |
B6 |
Integrating data and system knowledge to support decision-making: Advances, applications and lessons learned |
M |
| Pepler A |
Regional climate model projections of Australia's future weather systems |
Pepler A |
https://doi.org/10.36334/modsim2025.G04.pepler |
https://mssanz.org.au/modsim2025/files/G04.pepler.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
P |
| Doody T |
Reliability, Resilience and Vulnerability (RRV) framework as a tool to assess vegetation water stress |
Wimalasuriya R, Wardle G, Doody T, Gao S, Vervoort W |
https://doi.org/10.36334/modsim2025.J11.wimalasuriya |
https://mssanz.org.au/modsim2025/files/J11.wimalasuriya.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
D |
| Gao S (Sicong) |
Reliability, Resilience and Vulnerability (RRV) framework as a tool to assess vegetation water stress |
Wimalasuriya R, Wardle G, Doody T, Gao S, Vervoort W |
https://doi.org/10.36334/modsim2025.J11.wimalasuriya |
https://mssanz.org.au/modsim2025/files/J11.wimalasuriya.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
G |
| Vervoort RW |
Reliability, Resilience and Vulnerability (RRV) framework as a tool to assess vegetation water stress |
Wimalasuriya R, Wardle G, Doody T, Gao S, Vervoort W |
https://doi.org/10.36334/modsim2025.J11.wimalasuriya |
https://mssanz.org.au/modsim2025/files/J11.wimalasuriya.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
V |
| Wardle G |
Reliability, Resilience and Vulnerability (RRV) framework as a tool to assess vegetation water stress |
Wimalasuriya R, Wardle G, Doody T, Gao S, Vervoort W |
https://doi.org/10.36334/modsim2025.J11.wimalasuriya |
https://mssanz.org.au/modsim2025/files/J11.wimalasuriya.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
W |
| Wimalasuriya R |
Reliability, Resilience and Vulnerability (RRV) framework as a tool to assess vegetation water stress |
Wimalasuriya R, Wardle G, Doody T, Gao S, Vervoort W |
https://doi.org/10.36334/modsim2025.J11.wimalasuriya |
https://mssanz.org.au/modsim2025/files/J11.wimalasuriya.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
W |
| Amir QM |
Remote and retrospective calibration of soil moisture probes |
Amir QM, Bishop TFA, Van Ogtrop FF |
https://doi.org/10.36334/modsim2025.J03.amir |
https://mssanz.org.au/modsim2025/files/J03.amir.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
A |
| Bishop TFA |
Remote and retrospective calibration of soil moisture probes |
Amir QM, Bishop TFA, Van Ogtrop FF |
https://doi.org/10.36334/modsim2025.J03.amir |
https://mssanz.org.au/modsim2025/files/J03.amir.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
B |
| Van Ogtrop FF |
Remote and retrospective calibration of soil moisture probes |
Amir QM, Bishop TFA, Van Ogtrop FF |
https://doi.org/10.36334/modsim2025.J03.amir |
https://mssanz.org.au/modsim2025/files/J03.amir.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
V |
| Hilton JE |
Resolving radiation in physics-based wildfire spread modelling |
Swedosh W, Sharples JJ, Sutherland D, Hilton JE |
https://doi.org/10.36334/modsim2025.G08.swedosh |
https://mssanz.org.au/modsim2025/files/G08.swedosh.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
H |
| Sharples JJ |
Resolving radiation in physics-based wildfire spread modelling |
Swedosh W, Sharples JJ, Sutherland D, Hilton JE |
https://doi.org/10.36334/modsim2025.G08.swedosh |
https://mssanz.org.au/modsim2025/files/G08.swedosh.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
S |
| Sutherland D |
Resolving radiation in physics-based wildfire spread modelling |
Swedosh W, Sharples JJ, Sutherland D, Hilton JE |
https://doi.org/10.36334/modsim2025.G08.swedosh |
https://mssanz.org.au/modsim2025/files/G08.swedosh.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
S |
| Swedosh W |
Resolving radiation in physics-based wildfire spread modelling |
Swedosh W, Sharples JJ, Sutherland D, Hilton JE |
https://doi.org/10.36334/modsim2025.G08.swedosh |
https://mssanz.org.au/modsim2025/files/G08.swedosh.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
S |
| Escudero SG |
Resolving the hydrodynamics of a coastal wetland in Moreton Bay |
Kurucz K, Escudero SG, Hipsey MR |
https://doi.org/10.36334/modsim2025.J11.kurucz |
https://mssanz.org.au/modsim2025/files/J11.kurucz.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
E |
| Hipsey MR |
Resolving the hydrodynamics of a coastal wetland in Moreton Bay |
Kurucz K, Escudero SG, Hipsey MR |
https://doi.org/10.36334/modsim2025.J11.kurucz |
https://mssanz.org.au/modsim2025/files/J11.kurucz.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
H |
| Kurucz K |
Resolving the hydrodynamics of a coastal wetland in Moreton Bay |
Kurucz K, Escudero SG, Hipsey MR |
https://doi.org/10.36334/modsim2025.J11.kurucz |
https://mssanz.org.au/modsim2025/files/J11.kurucz.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
K |
| Pannipitiya D |
Responding to the challenges and complexities of urban water management in the Sydney Metro – SSTOM |
Pannipitiya N, Pannipitiya D |
https://doi.org/10.36334/modsim2025.L03.pannipitiya |
https://mssanz.org.au/modsim2025/files/L03.pannipitiya.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
P |
| Pannipitiya N |
Responding to the challenges and complexities of urban water management in the Sydney Metro – SSTOM |
Pannipitiya N, Pannipitiya D |
https://doi.org/10.36334/modsim2025.L03.pannipitiya |
https://mssanz.org.au/modsim2025/files/L03.pannipitiya.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
P |
| Crosland P |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
C |
| Ferdousi S |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
F |
| Hickie IB |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
H |
| Ho N |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
H |
| Hosseini SH |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
H |
| Huntley S |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
H |
| Lam D |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
L |
| Loblay V |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
L |
| Munasinghe S |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
M |
| Nguyen KH |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
N |
| Occhipinti JA |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
O |
| Piper S |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
P |
| Skinner A |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
S |
| Song YJC |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
S |
| Tran K (Kristen) |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
T |
| Vacher C |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
V |
| Waterhouse‑Bushnell Z |
Rethinking the scale-up of digital technologies for youth mental health: insights from participatory systems modelling in Western Sydney |
Hosseini SH, Crosland P, Ho N, Skinner A, Vacher C, Tran K, Nguyen KH, Piper S, Huntley S, Song YJC, Loblay V, Ferdousi S, Munasinghe S, Waterhouse‑Bushnell Z, Lam D, Hickie IB, Occhipinti JA |
https://doi.org/10.36334/modsim2025.H03.hosseini |
https://mssanz.org.au/modsim2025/files/H03.hosseini.pdf |
H |
Health and biosecurity |
H3 |
Evidence-Based and Optimal Decision-Making in Health Services Research through Simulation and Modelling |
W |
| Bishop T |
Revealing seasonal plasticity of whole-plant hydraulic properties using sap-flow and stem water-potential monitoring |
Zhang Y, Collyer B, Filippi P, Bishop T |
https://doi.org/10.36334/modsim2025.F12.zhang |
https://mssanz.org.au/modsim2025/files/F12.zhang.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
B |
| Collyer B |
Revealing seasonal plasticity of whole-plant hydraulic properties using sap-flow and stem water-potential monitoring |
Zhang Y, Collyer B, Filippi P, Bishop T |
https://doi.org/10.36334/modsim2025.F12.zhang |
https://mssanz.org.au/modsim2025/files/F12.zhang.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
C |
| Filippi P |
Revealing seasonal plasticity of whole-plant hydraulic properties using sap-flow and stem water-potential monitoring |
Zhang Y, Collyer B, Filippi P, Bishop T |
https://doi.org/10.36334/modsim2025.F12.zhang |
https://mssanz.org.au/modsim2025/files/F12.zhang.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
F |
| Zhang Z |
Revealing seasonal plasticity of whole-plant hydraulic properties using sap-flow and stem water-potential monitoring |
Zhang Y, Collyer B, Filippi P, Bishop T |
https://doi.org/10.36334/modsim2025.F12.zhang |
https://mssanz.org.au/modsim2025/files/F12.zhang.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
Z |
| Ng TLS |
Risk mitigation and human judgment in environmental watering under forecast uncertainty |
Ng TLS, Robertson DE |
https://doi.org/10.36334/modsim2025.J08.ng |
https://mssanz.org.au/modsim2025/files/J08.ng.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
N |
| Robertson DE |
Risk mitigation and human judgment in environmental watering under forecast uncertainty |
Ng TLS, Robertson DE |
https://doi.org/10.36334/modsim2025.J08.ng |
https://mssanz.org.au/modsim2025/files/J08.ng.pdf |
J |
Water resources |
J8 |
Decision-Making Under Uncertainty in Water Resources Management |
R |
| Snow V |
Robust models don’t grow on equations (or data) alone. The challenges of process-based modelling of pastoral systems |
Snow V |
https://doi.org/10.36334/modsim2025.P02.snow |
https://mssanz.org.au/modsim2025/files/P02.snow.pdf |
P |
Plenary |
P2 |
Plenary |
S |
| Batelaan O |
Root-zone 'periscope': Modelling plant-available water storage dynamics across scales from above ground observations |
Zhang Z, Guan H, Veneklaas E, Singha K, Batelaan O |
https://doi.org/10.36334/modsim2025.J11.zhang |
https://mssanz.org.au/modsim2025/files/J11.zhang.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
B |
| Guan H |
Root-zone 'periscope': Modelling plant-available water storage dynamics across scales from above ground observations |
Zhang Z, Guan H, Veneklaas E, Singha K, Batelaan O |
https://doi.org/10.36334/modsim2025.J11.zhang |
https://mssanz.org.au/modsim2025/files/J11.zhang.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
G |
| Singha K |
Root-zone 'periscope': Modelling plant-available water storage dynamics across scales from above ground observations |
Zhang Z, Guan H, Veneklaas E, Singha K, Batelaan O |
https://doi.org/10.36334/modsim2025.J11.zhang |
https://mssanz.org.au/modsim2025/files/J11.zhang.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
S |
| Veneklaas E |
Root-zone 'periscope': Modelling plant-available water storage dynamics across scales from above ground observations |
Zhang Z, Guan H, Veneklaas E, Singha K, Batelaan O |
https://doi.org/10.36334/modsim2025.J11.zhang |
https://mssanz.org.au/modsim2025/files/J11.zhang.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
V |
| Zhang Z |
Root-zone 'periscope': Modelling plant-available water storage dynamics across scales from above ground observations |
Zhang Z, Guan H, Veneklaas E, Singha K, Batelaan O |
https://doi.org/10.36334/modsim2025.J11.zhang |
https://mssanz.org.au/modsim2025/files/J11.zhang.pdf |
J |
Water resources |
J11 |
Ecohydrological Modelling |
Z |
| Azeem M |
Rules of thumb or models: Exploring diversity in growers’ nitrogen fertiliser decisions |
Azeem M, Brown B, Burton M, Bell L, Llewellyn R |
https://doi.org/10.36334/modsim2025.D05.azeem |
https://mssanz.org.au/modsim2025/files/D05.azeem.pdf |
D |
Economics and finance |
D5 |
Decision-making under uncertainty in economics and finance |
A |
| Bell L |
Rules of thumb or models: Exploring diversity in growers’ nitrogen fertiliser decisions |
Azeem M, Brown B, Burton M, Bell L, Llewellyn R |
https://doi.org/10.36334/modsim2025.D05.azeem |
https://mssanz.org.au/modsim2025/files/D05.azeem.pdf |
D |
Economics and finance |
D5 |
Decision-making under uncertainty in economics and finance |
B |
| Brown B |
Rules of thumb or models: Exploring diversity in growers’ nitrogen fertiliser decisions |
Azeem M, Brown B, Burton M, Bell L, Llewellyn R |
https://doi.org/10.36334/modsim2025.D05.azeem |
https://mssanz.org.au/modsim2025/files/D05.azeem.pdf |
D |
Economics and finance |
D5 |
Decision-making under uncertainty in economics and finance |
B |
| Burton M |
Rules of thumb or models: Exploring diversity in growers’ nitrogen fertiliser decisions |
Azeem M, Brown B, Burton M, Bell L, Llewellyn R |
https://doi.org/10.36334/modsim2025.D05.azeem |
https://mssanz.org.au/modsim2025/files/D05.azeem.pdf |
D |
Economics and finance |
D5 |
Decision-making under uncertainty in economics and finance |
B |
| Llewellyn R |
Rules of thumb or models: Exploring diversity in growers’ nitrogen fertiliser decisions |
Azeem M, Brown B, Burton M, Bell L, Llewellyn R |
https://doi.org/10.36334/modsim2025.D05.azeem |
https://mssanz.org.au/modsim2025/files/D05.azeem.pdf |
D |
Economics and finance |
D5 |
Decision-making under uncertainty in economics and finance |
L |
| Baek JB |
Safety management of hazardous chemicals in semiconductor wafer cleaning equipment focus of subcontractor practices |
Lee JS, Baek JB, Park KS, Lee MJ |
https://doi.org/10.36334/modsim2025.H01.lee |
https://mssanz.org.au/modsim2025/files/H01.lee.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
B |
| Lee JS |
Safety management of hazardous chemicals in semiconductor wafer cleaning equipment focus of subcontractor practices |
Lee JS, Baek JB, Park KS, Lee MJ |
https://doi.org/10.36334/modsim2025.H01.lee |
https://mssanz.org.au/modsim2025/files/H01.lee.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
L |
| Lee MJ |
Safety management of hazardous chemicals in semiconductor wafer cleaning equipment focus of subcontractor practices |
Lee JS, Baek JB, Park KS, Lee MJ |
https://doi.org/10.36334/modsim2025.H01.lee |
https://mssanz.org.au/modsim2025/files/H01.lee.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
L |
| Park KS |
Safety management of hazardous chemicals in semiconductor wafer cleaning equipment focus of subcontractor practices |
Lee JS, Baek JB, Park KS, Lee MJ |
https://doi.org/10.36334/modsim2025.H01.lee |
https://mssanz.org.au/modsim2025/files/H01.lee.pdf |
H |
Health and biosecurity |
H1 |
Use of Artificial Intelligence and Machine Learning in the Design and Modeling of Disease, Cancer, and Safety Data |
P |
| Botha H |
Satellite-based assessment of marine phytoplankton productivity responses to climate and anthropogenic pressures in Asia-Pacific waters |
Xu Y, Xu T, Doran B, Botha H |
https://doi.org/10.36334/modsim2025.G02.xu |
https://mssanz.org.au/modsim2025/files/G02.xu.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
B |
| Doran B |
Satellite-based assessment of marine phytoplankton productivity responses to climate and anthropogenic pressures in Asia-Pacific waters |
Xu Y, Xu T, Doran B, Botha H |
https://doi.org/10.36334/modsim2025.G02.xu |
https://mssanz.org.au/modsim2025/files/G02.xu.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
D |
| Xu T (Tingbao) |
Satellite-based assessment of marine phytoplankton productivity responses to climate and anthropogenic pressures in Asia-Pacific waters |
Xu Y, Xu T, Doran B, Botha H |
https://doi.org/10.36334/modsim2025.G02.xu |
https://mssanz.org.au/modsim2025/files/G02.xu.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
X |
| Xu Y |
Satellite-based assessment of marine phytoplankton productivity responses to climate and anthropogenic pressures in Asia-Pacific waters |
Xu Y, Xu T, Doran B, Botha H |
https://doi.org/10.36334/modsim2025.G02.xu |
https://mssanz.org.au/modsim2025/files/G02.xu.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
X |
| Ahmad F |
Satellite-based water budgeting and seasonal groundwater stress assessment in Indus Basin using flux towers |
Liaqat UW, Hafeez M, Bodla HU, Ahmad F |
https://doi.org/10.36334/modsim2025.J10.liaqat |
https://mssanz.org.au/modsim2025/files/J10.liaqat.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
A |
| Bodla HU |
Satellite-based water budgeting and seasonal groundwater stress assessment in Indus Basin using flux towers |
Liaqat UW, Hafeez M, Bodla HU, Ahmad F |
https://doi.org/10.36334/modsim2025.J10.liaqat |
https://mssanz.org.au/modsim2025/files/J10.liaqat.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
B |
| Hafeez M (Mohsin) |
Satellite-based water budgeting and seasonal groundwater stress assessment in Indus Basin using flux towers |
Liaqat UW, Hafeez M, Bodla HU, Ahmad F |
https://doi.org/10.36334/modsim2025.J10.liaqat |
https://mssanz.org.au/modsim2025/files/J10.liaqat.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
H |
| Liaqat UW |
Satellite-based water budgeting and seasonal groundwater stress assessment in Indus Basin using flux towers |
Liaqat UW, Hafeez M, Bodla HU, Ahmad F |
https://doi.org/10.36334/modsim2025.J10.liaqat |
https://mssanz.org.au/modsim2025/files/J10.liaqat.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
L |
| Kavetski D |
Scale-invariant models for extreme rainfall: Application to Australian sites |
You L, Kavetski D, Lambert M |
https://doi.org/10.36334/modsim2025.J06.you |
https://mssanz.org.au/modsim2025/files/J06.you.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
K |
| Lambert M |
Scale-invariant models for extreme rainfall: Application to Australian sites |
You L, Kavetski D, Lambert M |
https://doi.org/10.36334/modsim2025.J06.you |
https://mssanz.org.au/modsim2025/files/J06.you.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
L |
| You L |
Scale-invariant models for extreme rainfall: Application to Australian sites |
You L, Kavetski D, Lambert M |
https://doi.org/10.36334/modsim2025.J06.you |
https://mssanz.org.au/modsim2025/files/J06.you.pdf |
J |
Water resources |
J6 |
Hydroclimate extremes forecasting: from droughts to floods |
Y |
| Driver P |
Scenario simulation modelling for future states of Australian socioecological landscapes |
Szetey K, Driver P, Luxton S, Prober SM, Richards AE |
https://doi.org/10.36334/modsim2025.F05.szetey |
https://mssanz.org.au/modsim2025/files/F05.szetey.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
D |
| Luxton S |
Scenario simulation modelling for future states of Australian socioecological landscapes |
Szetey K, Driver P, Luxton S, Prober SM, Richards AE |
https://doi.org/10.36334/modsim2025.F05.szetey |
https://mssanz.org.au/modsim2025/files/F05.szetey.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
L |
| Prober SM |
Scenario simulation modelling for future states of Australian socioecological landscapes |
Szetey K, Driver P, Luxton S, Prober SM, Richards AE |
https://doi.org/10.36334/modsim2025.F05.szetey |
https://mssanz.org.au/modsim2025/files/F05.szetey.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
P |
| Richards AE |
Scenario simulation modelling for future states of Australian socioecological landscapes |
Szetey K, Driver P, Luxton S, Prober SM, Richards AE |
https://doi.org/10.36334/modsim2025.F05.szetey |
https://mssanz.org.au/modsim2025/files/F05.szetey.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
R |
| Szetey K |
Scenario simulation modelling for future states of Australian socioecological landscapes |
Szetey K, Driver P, Luxton S, Prober SM, Richards AE |
https://doi.org/10.36334/modsim2025.F05.szetey |
https://mssanz.org.au/modsim2025/files/F05.szetey.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
S |
| Campos P |
Scenarios in stories: Communicating flood inundation modelling in the Cooper Creek using interactive StoryMaps |
Mateo CMR, Vaze J, Holland K, Marvanek S, Zheng H, Wang B, London A, Campos P, Huddlestone-Holmes C |
https://doi.org/10.36334/modsim2025.G09.mateo |
https://mssanz.org.au/modsim2025/files/G09.mateo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
C |
| Holland K |
Scenarios in stories: Communicating flood inundation modelling in the Cooper Creek using interactive StoryMaps |
Mateo CMR, Vaze J, Holland K, Marvanek S, Zheng H, Wang B, London A, Campos P, Huddlestone-Holmes C |
https://doi.org/10.36334/modsim2025.G09.mateo |
https://mssanz.org.au/modsim2025/files/G09.mateo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
H |
| Huddlestone-Holmes C |
Scenarios in stories: Communicating flood inundation modelling in the Cooper Creek using interactive StoryMaps |
Mateo CMR, Vaze J, Holland K, Marvanek S, Zheng H, Wang B, London A, Campos P, Huddlestone-Holmes C |
https://doi.org/10.36334/modsim2025.G09.mateo |
https://mssanz.org.au/modsim2025/files/G09.mateo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
H |
| London A |
Scenarios in stories: Communicating flood inundation modelling in the Cooper Creek using interactive StoryMaps |
Mateo CMR, Vaze J, Holland K, Marvanek S, Zheng H, Wang B, London A, Campos P, Huddlestone-Holmes C |
https://doi.org/10.36334/modsim2025.G09.mateo |
https://mssanz.org.au/modsim2025/files/G09.mateo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
L |
| Marvanek S |
Scenarios in stories: Communicating flood inundation modelling in the Cooper Creek using interactive StoryMaps |
Mateo CMR, Vaze J, Holland K, Marvanek S, Zheng H, Wang B, London A, Campos P, Huddlestone-Holmes C |
https://doi.org/10.36334/modsim2025.G09.mateo |
https://mssanz.org.au/modsim2025/files/G09.mateo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
M |
| Mateo CMR |
Scenarios in stories: Communicating flood inundation modelling in the Cooper Creek using interactive StoryMaps |
Mateo CMR, Vaze J, Holland K, Marvanek S, Zheng H, Wang B, London A, Campos P, Huddlestone-Holmes C |
https://doi.org/10.36334/modsim2025.G09.mateo |
https://mssanz.org.au/modsim2025/files/G09.mateo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
M |
| Vaze J |
Scenarios in stories: Communicating flood inundation modelling in the Cooper Creek using interactive StoryMaps |
Mateo CMR, Vaze J, Holland K, Marvanek S, Zheng H, Wang B, London A, Campos P, Huddlestone-Holmes C |
https://doi.org/10.36334/modsim2025.G09.mateo |
https://mssanz.org.au/modsim2025/files/G09.mateo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
V |
| Wang B (Bill) |
Scenarios in stories: Communicating flood inundation modelling in the Cooper Creek using interactive StoryMaps |
Mateo CMR, Vaze J, Holland K, Marvanek S, Zheng H, Wang B, London A, Campos P, Huddlestone-Holmes C |
https://doi.org/10.36334/modsim2025.G09.mateo |
https://mssanz.org.au/modsim2025/files/G09.mateo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
W |
| Zheng H (Hongzing) |
Scenarios in stories: Communicating flood inundation modelling in the Cooper Creek using interactive StoryMaps |
Mateo CMR, Vaze J, Holland K, Marvanek S, Zheng H, Wang B, London A, Campos P, Huddlestone-Holmes C |
https://doi.org/10.36334/modsim2025.G09.mateo |
https://mssanz.org.au/modsim2025/files/G09.mateo.pdf |
G |
Global change and natural hazards |
G9 |
Advancing Flood and Tsunami Modelling: Techniques, Applications, and Emerging Technologies |
Z |
| Chiera BA |
SCOPE: An integrated early warning system for combat casualty prediction |
Tiong JKR, Chiera BA |
https://doi.org/10.36334/modsim2025.M02.tiong |
https://mssanz.org.au/modsim2025/files/M02.tiong.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
C |
| Tiong JKR |
SCOPE: An integrated early warning system for combat casualty prediction |
Tiong JKR, Chiera BA |
https://doi.org/10.36334/modsim2025.M02.tiong |
https://mssanz.org.au/modsim2025/files/M02.tiong.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
T |
| Lin Z (Zhaohui) |
Seasonal prediction of summer rainfall anomalies over China using CAS-ESM and machine learning technique (INVITED SPEAKER) |
Lin Z, Shao Y, Zhang H, Zhang H |
https://doi.org/10.36334/modsim2025.K08.lin |
https://mssanz.org.au/modsim2025/files/K08.lin.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
L |
| Shao Y (Yuhang) |
Seasonal prediction of summer rainfall anomalies over China using CAS-ESM and machine learning technique (INVITED SPEAKER) |
Lin Z, Shao Y, Zhang H, Zhang H |
https://doi.org/10.36334/modsim2025.K08.lin |
https://mssanz.org.au/modsim2025/files/K08.lin.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
S |
| Zhang H (He) |
Seasonal prediction of summer rainfall anomalies over China using CAS-ESM and machine learning technique (INVITED SPEAKER) |
Lin Z, Shao Y, Zhang H, Zhang H |
https://doi.org/10.36334/modsim2025.K08.lin |
https://mssanz.org.au/modsim2025/files/K08.lin.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
Z |
| Zhang H (Huiwei) |
Seasonal prediction of summer rainfall anomalies over China using CAS-ESM and machine learning technique (INVITED SPEAKER) |
Lin Z, Shao Y, Zhang H, Zhang H |
https://doi.org/10.36334/modsim2025.K08.lin |
https://mssanz.org.au/modsim2025/files/K08.lin.pdf |
K |
Hydroclimate |
K8 |
Watershed flood regime changes and their prediction |
Z |
| Graham TDJ |
Selective incorporation of trend into seasonal streamflow climatology |
Graham T, Wang Q, Western A, Wu W |
https://doi.org/10.36334/modsim2025.K06.graham |
https://mssanz.org.au/modsim2025/files/K06.graham.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
G |
| Wang QJ |
Selective incorporation of trend into seasonal streamflow climatology |
Graham T, Wang Q, Western A, Wu W |
https://doi.org/10.36334/modsim2025.K06.graham |
https://mssanz.org.au/modsim2025/files/K06.graham.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
W |
| Western AW |
Selective incorporation of trend into seasonal streamflow climatology |
Graham T, Wang Q, Western A, Wu W |
https://doi.org/10.36334/modsim2025.K06.graham |
https://mssanz.org.au/modsim2025/files/K06.graham.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
W |
| Wu W (Wenyan) |
Selective incorporation of trend into seasonal streamflow climatology |
Graham T, Wang Q, Western A, Wu W |
https://doi.org/10.36334/modsim2025.K06.graham |
https://mssanz.org.au/modsim2025/files/K06.graham.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
W |
| Biggs J |
Sensibility testing of a NH3 volatilisation model for APSIM |
Pasley H, Verburg K, Biggs J, Cichota R, Schwenke G, Vogeler I, Holzworth D, Snow V |
https://doi.org/10.36334/modsim2025.B03.pasleyh |
https://mssanz.org.au/modsim2025/files/B03.pasleyh.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
B |
| Cichota R |
Sensibility testing of a NH3 volatilisation model for APSIM |
Pasley H, Verburg K, Biggs J, Cichota R, Schwenke G, Vogeler I, Holzworth D, Snow V |
https://doi.org/10.36334/modsim2025.B03.pasleyh |
https://mssanz.org.au/modsim2025/files/B03.pasleyh.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
C |
| Holzworth D |
Sensibility testing of a NH3 volatilisation model for APSIM |
Pasley H, Verburg K, Biggs J, Cichota R, Schwenke G, Vogeler I, Holzworth D, Snow V |
https://doi.org/10.36334/modsim2025.B03.pasleyh |
https://mssanz.org.au/modsim2025/files/B03.pasleyh.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
H |
| Pasley H |
Sensibility testing of a NH3 volatilisation model for APSIM |
Pasley H, Verburg K, Biggs J, Cichota R, Schwenke G, Vogeler I, Holzworth D, Snow V |
https://doi.org/10.36334/modsim2025.B03.pasleyh |
https://mssanz.org.au/modsim2025/files/B03.pasleyh.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
P |
| Schwenke G |
Sensibility testing of a NH3 volatilisation model for APSIM |
Pasley H, Verburg K, Biggs J, Cichota R, Schwenke G, Vogeler I, Holzworth D, Snow V |
https://doi.org/10.36334/modsim2025.B03.pasleyh |
https://mssanz.org.au/modsim2025/files/B03.pasleyh.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
S |
| Snow V |
Sensibility testing of a NH3 volatilisation model for APSIM |
Pasley H, Verburg K, Biggs J, Cichota R, Schwenke G, Vogeler I, Holzworth D, Snow V |
https://doi.org/10.36334/modsim2025.B03.pasleyh |
https://mssanz.org.au/modsim2025/files/B03.pasleyh.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
S |
| Verburg K |
Sensibility testing of a NH3 volatilisation model for APSIM |
Pasley H, Verburg K, Biggs J, Cichota R, Schwenke G, Vogeler I, Holzworth D, Snow V |
https://doi.org/10.36334/modsim2025.B03.pasleyh |
https://mssanz.org.au/modsim2025/files/B03.pasleyh.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
V |
| Vogeler I |
Sensibility testing of a NH3 volatilisation model for APSIM |
Pasley H, Verburg K, Biggs J, Cichota R, Schwenke G, Vogeler I, Holzworth D, Snow V |
https://doi.org/10.36334/modsim2025.B03.pasleyh |
https://mssanz.org.au/modsim2025/files/B03.pasleyh.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
V |
| Ani CJ |
Sensitivity analysis of a local-scale coral larval connectivity model to biological parameters |
Ani CJ, Robson BJ |
https://doi.org/10.36334/modsim2025.F03.ani |
https://mssanz.org.au/modsim2025/files/F03.ani.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
A |
| Robson BJ |
Sensitivity analysis of a local-scale coral larval connectivity model to biological parameters |
Ani CJ, Robson BJ |
https://doi.org/10.36334/modsim2025.F03.ani |
https://mssanz.org.au/modsim2025/files/F03.ani.pdf |
F |
Environment and ecology |
F3 |
Modelling for effective climate change adaptation |
R |
| Beh T |
Sensor-driven control of UAS using AI in simulation |
Pywell S, Beh T, Crase S, Dansie J |
https://doi.org/10.36334/modsim2025.C02.pywell |
https://mssanz.org.au/modsim2025/files/C02.pywell.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
B |
| Crase S |
Sensor-driven control of UAS using AI in simulation |
Pywell S, Beh T, Crase S, Dansie J |
https://doi.org/10.36334/modsim2025.C02.pywell |
https://mssanz.org.au/modsim2025/files/C02.pywell.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
C |
| Dansie J |
Sensor-driven control of UAS using AI in simulation |
Pywell S, Beh T, Crase S, Dansie J |
https://doi.org/10.36334/modsim2025.C02.pywell |
https://mssanz.org.au/modsim2025/files/C02.pywell.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
D |
| Pywell S |
Sensor-driven control of UAS using AI in simulation |
Pywell S, Beh T, Crase S, Dansie J |
https://doi.org/10.36334/modsim2025.C02.pywell |
https://mssanz.org.au/modsim2025/files/C02.pywell.pdf |
C |
Computer science and engineering |
C2 |
Modelling and simulation of Robotic and Autonomous Systems (RAS) |
P |
| Pincombe W |
Sentiment analysis of historical Australian parliamentary speeches |
Pincombe W |
https://doi.org/10.36334/modsim2025.A03.pincombe |
https://mssanz.org.au/modsim2025/files/A03.pincombe.pdf |
A |
Applied and computational mathematics |
A3 |
Modelling and simulation for trustworthy data science on challenging datasets |
P |
| Bennett FR |
ShapleyX – a Python package for the efficient estimation of Shapley effects and Sobol indices from tabular data |
Bennett FR |
https://doi.org/10.36334/modsim2025.A04.bennett |
https://mssanz.org.au/modsim2025/files/A04.bennett.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
B |
| Huth NI |
Shedding light on complexity using sensitivity analysis |
Huth NI, Simwaka P, Lana M |
https://doi.org/10.36334/modsim2025.B05.huth |
https://mssanz.org.au/modsim2025/files/B05.huth.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
H |
| Lana M |
Shedding light on complexity using sensitivity analysis |
Huth NI, Simwaka P, Lana M |
https://doi.org/10.36334/modsim2025.B05.huth |
https://mssanz.org.au/modsim2025/files/B05.huth.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
L |
| Simwaka P |
Shedding light on complexity using sensitivity analysis |
Huth NI, Simwaka P, Lana M |
https://doi.org/10.36334/modsim2025.B05.huth |
https://mssanz.org.au/modsim2025/files/B05.huth.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
S |
| Maier HR |
Shifting from modelling changes in climate to better understanding risks to achieving desired outcomes |
Maier HR |
https://doi.org/10.36334/modsim2025.J07.maier |
https://mssanz.org.au/modsim2025/files/J07.maier.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
M |
| Brennan E |
Shifting Left: Building a collaborative integrated hydrological model for the Murray‑Darling Basin |
Brennan E, Peralta L, Vorreiter D, Fuller J, Price N, Dixon S, Gijsbers P, De Kleermaeker S, Rahman J, Cressall B, Urich C |
https://doi.org/10.36334/modsim2025.J02.brennan |
https://mssanz.org.au/modsim2025/files/J02.brennan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
B |
| Cressall B |
Shifting Left: Building a collaborative integrated hydrological model for the Murray‑Darling Basin |
Brennan E, Peralta L, Vorreiter D, Fuller J, Price N, Dixon S, Gijsbers P, De Kleermaeker S, Rahman J, Cressall B, Urich C |
https://doi.org/10.36334/modsim2025.J02.brennan |
https://mssanz.org.au/modsim2025/files/J02.brennan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
C |
| De Kleermaeker S |
Shifting Left: Building a collaborative integrated hydrological model for the Murray‑Darling Basin |
Brennan E, Peralta L, Vorreiter D, Fuller J, Price N, Dixon S, Gijsbers P, De Kleermaeker S, Rahman J, Cressall B, Urich C |
https://doi.org/10.36334/modsim2025.J02.brennan |
https://mssanz.org.au/modsim2025/files/J02.brennan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
D |
| Dixon S |
Shifting Left: Building a collaborative integrated hydrological model for the Murray‑Darling Basin |
Brennan E, Peralta L, Vorreiter D, Fuller J, Price N, Dixon S, Gijsbers P, De Kleermaeker S, Rahman J, Cressall B, Urich C |
https://doi.org/10.36334/modsim2025.J02.brennan |
https://mssanz.org.au/modsim2025/files/J02.brennan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
D |
| Fuller J |
Shifting Left: Building a collaborative integrated hydrological model for the Murray‑Darling Basin |
Brennan E, Peralta L, Vorreiter D, Fuller J, Price N, Dixon S, Gijsbers P, De Kleermaeker S, Rahman J, Cressall B, Urich C |
https://doi.org/10.36334/modsim2025.J02.brennan |
https://mssanz.org.au/modsim2025/files/J02.brennan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
F |
| Gijsbers P |
Shifting Left: Building a collaborative integrated hydrological model for the Murray‑Darling Basin |
Brennan E, Peralta L, Vorreiter D, Fuller J, Price N, Dixon S, Gijsbers P, De Kleermaeker S, Rahman J, Cressall B, Urich C |
https://doi.org/10.36334/modsim2025.J02.brennan |
https://mssanz.org.au/modsim2025/files/J02.brennan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
G |
| Peralta L |
Shifting Left: Building a collaborative integrated hydrological model for the Murray‑Darling Basin |
Brennan E, Peralta L, Vorreiter D, Fuller J, Price N, Dixon S, Gijsbers P, De Kleermaeker S, Rahman J, Cressall B, Urich C |
https://doi.org/10.36334/modsim2025.J02.brennan |
https://mssanz.org.au/modsim2025/files/J02.brennan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
P |
| Price N |
Shifting Left: Building a collaborative integrated hydrological model for the Murray‑Darling Basin |
Brennan E, Peralta L, Vorreiter D, Fuller J, Price N, Dixon S, Gijsbers P, De Kleermaeker S, Rahman J, Cressall B, Urich C |
https://doi.org/10.36334/modsim2025.J02.brennan |
https://mssanz.org.au/modsim2025/files/J02.brennan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
P |
| Rahman J (Joel) |
Shifting Left: Building a collaborative integrated hydrological model for the Murray‑Darling Basin |
Brennan E, Peralta L, Vorreiter D, Fuller J, Price N, Dixon S, Gijsbers P, De Kleermaeker S, Rahman J, Cressall B, Urich C |
https://doi.org/10.36334/modsim2025.J02.brennan |
https://mssanz.org.au/modsim2025/files/J02.brennan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
R |
| Urich C |
Shifting Left: Building a collaborative integrated hydrological model for the Murray‑Darling Basin |
Brennan E, Peralta L, Vorreiter D, Fuller J, Price N, Dixon S, Gijsbers P, De Kleermaeker S, Rahman J, Cressall B, Urich C |
https://doi.org/10.36334/modsim2025.J02.brennan |
https://mssanz.org.au/modsim2025/files/J02.brennan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
U |
| Vorreiter D |
Shifting Left: Building a collaborative integrated hydrological model for the Murray‑Darling Basin |
Brennan E, Peralta L, Vorreiter D, Fuller J, Price N, Dixon S, Gijsbers P, De Kleermaeker S, Rahman J, Cressall B, Urich C |
https://doi.org/10.36334/modsim2025.J02.brennan |
https://mssanz.org.au/modsim2025/files/J02.brennan.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
V |
| Adams MP |
Simple models can reveal insightful science: data-fitted models of intertidal seagrass as a case study |
Adams MP, Wang X, Shao D |
https://doi.org/10.36334/modsim2025.F12.adams |
https://mssanz.org.au/modsim2025/files/F12.adams.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
A |
| Shao D |
Simple models can reveal insightful science: data-fitted models of intertidal seagrass as a case study |
Adams MP, Wang X, Shao D |
https://doi.org/10.36334/modsim2025.F12.adams |
https://mssanz.org.au/modsim2025/files/F12.adams.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
S |
| Wang X (Xinyan) |
Simple models can reveal insightful science: data-fitted models of intertidal seagrass as a case study |
Adams MP, Wang X, Shao D |
https://doi.org/10.36334/modsim2025.F12.adams |
https://mssanz.org.au/modsim2025/files/F12.adams.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
W |
| Beletse Y |
Simulating nitrogen dynamics for sustainable farming systems |
Verburg K, Pasley HR, Garba II, Biggs JS, Beletse Y, Snow V, Vogeler I, Holzworth DP, Cichota R, Huth NI, Wang E, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B01.verburg |
https://mssanz.org.au/modsim2025/files/B01.verburg.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
B |
| Biggs JS |
Simulating nitrogen dynamics for sustainable farming systems |
Verburg K, Pasley HR, Garba II, Biggs JS, Beletse Y, Snow V, Vogeler I, Holzworth DP, Cichota R, Huth NI, Wang E, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B01.verburg |
https://mssanz.org.au/modsim2025/files/B01.verburg.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
B |
| Cichota R |
Simulating nitrogen dynamics for sustainable farming systems |
Verburg K, Pasley HR, Garba II, Biggs JS, Beletse Y, Snow V, Vogeler I, Holzworth DP, Cichota R, Huth NI, Wang E, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B01.verburg |
https://mssanz.org.au/modsim2025/files/B01.verburg.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
C |
| Garba II |
Simulating nitrogen dynamics for sustainable farming systems |
Verburg K, Pasley HR, Garba II, Biggs JS, Beletse Y, Snow V, Vogeler I, Holzworth DP, Cichota R, Huth NI, Wang E, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B01.verburg |
https://mssanz.org.au/modsim2025/files/B01.verburg.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
G |
| Holzworth DP |
Simulating nitrogen dynamics for sustainable farming systems |
Verburg K, Pasley HR, Garba II, Biggs JS, Beletse Y, Snow V, Vogeler I, Holzworth DP, Cichota R, Huth NI, Wang E, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B01.verburg |
https://mssanz.org.au/modsim2025/files/B01.verburg.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
H |
| Huth NI |
Simulating nitrogen dynamics for sustainable farming systems |
Verburg K, Pasley HR, Garba II, Biggs JS, Beletse Y, Snow V, Vogeler I, Holzworth DP, Cichota R, Huth NI, Wang E, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B01.verburg |
https://mssanz.org.au/modsim2025/files/B01.verburg.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
H |
| Pasley HR |
Simulating nitrogen dynamics for sustainable farming systems |
Verburg K, Pasley HR, Garba II, Biggs JS, Beletse Y, Snow V, Vogeler I, Holzworth DP, Cichota R, Huth NI, Wang E, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B01.verburg |
https://mssanz.org.au/modsim2025/files/B01.verburg.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
P |
| Snow V |
Simulating nitrogen dynamics for sustainable farming systems |
Verburg K, Pasley HR, Garba II, Biggs JS, Beletse Y, Snow V, Vogeler I, Holzworth DP, Cichota R, Huth NI, Wang E, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B01.verburg |
https://mssanz.org.au/modsim2025/files/B01.verburg.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
S |
| Thorburn PJ |
Simulating nitrogen dynamics for sustainable farming systems |
Verburg K, Pasley HR, Garba II, Biggs JS, Beletse Y, Snow V, Vogeler I, Holzworth DP, Cichota R, Huth NI, Wang E, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B01.verburg |
https://mssanz.org.au/modsim2025/files/B01.verburg.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
T |
| Verburg K |
Simulating nitrogen dynamics for sustainable farming systems |
Verburg K, Pasley HR, Garba II, Biggs JS, Beletse Y, Snow V, Vogeler I, Holzworth DP, Cichota R, Huth NI, Wang E, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B01.verburg |
https://mssanz.org.au/modsim2025/files/B01.verburg.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
V |
| Vogeler I |
Simulating nitrogen dynamics for sustainable farming systems |
Verburg K, Pasley HR, Garba II, Biggs JS, Beletse Y, Snow V, Vogeler I, Holzworth DP, Cichota R, Huth NI, Wang E, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B01.verburg |
https://mssanz.org.au/modsim2025/files/B01.verburg.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
V |
| Wang E (Enli) |
Simulating nitrogen dynamics for sustainable farming systems |
Verburg K, Pasley HR, Garba II, Biggs JS, Beletse Y, Snow V, Vogeler I, Holzworth DP, Cichota R, Huth NI, Wang E, Thorburn PJ |
https://doi.org/10.36334/modsim2025.B01.verburg |
https://mssanz.org.au/modsim2025/files/B01.verburg.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
W |
| Cichota R |
Simulating the effects of microclimate on the water balance of understorey plant communities in orchards |
Cichota R, Sharp J, Gentile R, Müller K |
https://doi.org/10.36334/modsim2025.B05.cichota |
https://mssanz.org.au/modsim2025/files/B05.cichota.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
C |
| Gentile R |
Simulating the effects of microclimate on the water balance of understorey plant communities in orchards |
Cichota R, Sharp J, Gentile R, Müller K |
https://doi.org/10.36334/modsim2025.B05.cichota |
https://mssanz.org.au/modsim2025/files/B05.cichota.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
G |
| Müller K |
Simulating the effects of microclimate on the water balance of understorey plant communities in orchards |
Cichota R, Sharp J, Gentile R, Müller K |
https://doi.org/10.36334/modsim2025.B05.cichota |
https://mssanz.org.au/modsim2025/files/B05.cichota.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
M |
| Sharp J |
Simulating the effects of microclimate on the water balance of understorey plant communities in orchards |
Cichota R, Sharp J, Gentile R, Müller K |
https://doi.org/10.36334/modsim2025.B05.cichota |
https://mssanz.org.au/modsim2025/files/B05.cichota.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
S |
| Alam J |
Simulating transmission losses during environmental flow events in the northern Murray-Darling Basin |
Kim SSH, Crosbie RS, Dawes W, Vaze J, Wang B, Mateo C, May R, Nair S, Alam J |
https://doi.org/10.36334/modsim2025.J02.kims |
https://mssanz.org.au/modsim2025/files/J02.kims.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
A |
| Crosbie RS |
Simulating transmission losses during environmental flow events in the northern Murray-Darling Basin |
Kim SSH, Crosbie RS, Dawes W, Vaze J, Wang B, Mateo C, May R, Nair S, Alam J |
https://doi.org/10.36334/modsim2025.J02.kims |
https://mssanz.org.au/modsim2025/files/J02.kims.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
C |
| Dawes W |
Simulating transmission losses during environmental flow events in the northern Murray-Darling Basin |
Kim SSH, Crosbie RS, Dawes W, Vaze J, Wang B, Mateo C, May R, Nair S, Alam J |
https://doi.org/10.36334/modsim2025.J02.kims |
https://mssanz.org.au/modsim2025/files/J02.kims.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
D |
| Kim SSH |
Simulating transmission losses during environmental flow events in the northern Murray-Darling Basin |
Kim SSH, Crosbie RS, Dawes W, Vaze J, Wang B, Mateo C, May R, Nair S, Alam J |
https://doi.org/10.36334/modsim2025.J02.kims |
https://mssanz.org.au/modsim2025/files/J02.kims.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
K |
| Mateo C |
Simulating transmission losses during environmental flow events in the northern Murray-Darling Basin |
Kim SSH, Crosbie RS, Dawes W, Vaze J, Wang B, Mateo C, May R, Nair S, Alam J |
https://doi.org/10.36334/modsim2025.J02.kims |
https://mssanz.org.au/modsim2025/files/J02.kims.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
M |
| May R |
Simulating transmission losses during environmental flow events in the northern Murray-Darling Basin |
Kim SSH, Crosbie RS, Dawes W, Vaze J, Wang B, Mateo C, May R, Nair S, Alam J |
https://doi.org/10.36334/modsim2025.J02.kims |
https://mssanz.org.au/modsim2025/files/J02.kims.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
M |
| Nair S |
Simulating transmission losses during environmental flow events in the northern Murray-Darling Basin |
Kim SSH, Crosbie RS, Dawes W, Vaze J, Wang B, Mateo C, May R, Nair S, Alam J |
https://doi.org/10.36334/modsim2025.J02.kims |
https://mssanz.org.au/modsim2025/files/J02.kims.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
N |
| Vaze J |
Simulating transmission losses during environmental flow events in the northern Murray-Darling Basin |
Kim SSH, Crosbie RS, Dawes W, Vaze J, Wang B, Mateo C, May R, Nair S, Alam J |
https://doi.org/10.36334/modsim2025.J02.kims |
https://mssanz.org.au/modsim2025/files/J02.kims.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
V |
| Wang B (Bill) |
Simulating transmission losses during environmental flow events in the northern Murray-Darling Basin |
Kim SSH, Crosbie RS, Dawes W, Vaze J, Wang B, Mateo C, May R, Nair S, Alam J |
https://doi.org/10.36334/modsim2025.J02.kims |
https://mssanz.org.au/modsim2025/files/J02.kims.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
W |
| Clarke W |
Simulating wind-driven greenhouse gas exchange in landfills |
Pjetri M, Clarke W, Gibbes B |
https://doi.org/10.36334/modsim2025.A06.pjetri |
https://mssanz.org.au/modsim2025/files/A06.pjetri.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
C |
| Gibbes B |
Simulating wind-driven greenhouse gas exchange in landfills |
Pjetri M, Clarke W, Gibbes B |
https://doi.org/10.36334/modsim2025.A06.pjetri |
https://mssanz.org.au/modsim2025/files/A06.pjetri.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
G |
| Pjetri M |
Simulating wind-driven greenhouse gas exchange in landfills |
Pjetri M, Clarke W, Gibbes B |
https://doi.org/10.36334/modsim2025.A06.pjetri |
https://mssanz.org.au/modsim2025/files/A06.pjetri.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
P |
| Cunningham L |
Simulation of ember transport around urban structures |
Cunningham L, Hilton J, Rudman M |
https://doi.org/10.36334/modsim2025.G08.cunningham |
https://mssanz.org.au/modsim2025/files/G08.cunningham.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
C |
| Hilton J |
Simulation of ember transport around urban structures |
Cunningham L, Hilton J, Rudman M |
https://doi.org/10.36334/modsim2025.G08.cunningham |
https://mssanz.org.au/modsim2025/files/G08.cunningham.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
H |
| Rudman M |
Simulation of ember transport around urban structures |
Cunningham L, Hilton J, Rudman M |
https://doi.org/10.36334/modsim2025.G08.cunningham |
https://mssanz.org.au/modsim2025/files/G08.cunningham.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
R |
| Rojas AM |
Simulation of residential energy-efficiency star rating and thermal requirement using NatHERS certificate data |
Wang C‑H, Rojas AM |
https://doi.org/10.36334/modsim2025.A04.wang |
https://mssanz.org.au/modsim2025/files/A04.wang.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
R |
| Wang C‑H |
Simulation of residential energy-efficiency star rating and thermal requirement using NatHERS certificate data |
Wang C‑H, Rojas AM |
https://doi.org/10.36334/modsim2025.A04.wang |
https://mssanz.org.au/modsim2025/files/A04.wang.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
W |
| Barber A |
Simulation-based decision support for nitrogen management in vegetable production: The Sustainable Vegetable Systems (SVS) Tool |
Khaembah EN, Brown H, Barber A, Stenning H, Dellow S, Sharp J, Searle B |
https://doi.org/10.36334/modsim2025.B05.khaembah |
https://mssanz.org.au/modsim2025/files/B05.khaembah.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
B |
| Brown H (Hamish) |
Simulation-based decision support for nitrogen management in vegetable production: The Sustainable Vegetable Systems (SVS) Tool |
Khaembah EN, Brown H, Barber A, Stenning H, Dellow S, Sharp J, Searle B |
https://doi.org/10.36334/modsim2025.B05.khaembah |
https://mssanz.org.au/modsim2025/files/B05.khaembah.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
B |
| Dellow S |
Simulation-based decision support for nitrogen management in vegetable production: The Sustainable Vegetable Systems (SVS) Tool |
Khaembah EN, Brown H, Barber A, Stenning H, Dellow S, Sharp J, Searle B |
https://doi.org/10.36334/modsim2025.B05.khaembah |
https://mssanz.org.au/modsim2025/files/B05.khaembah.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
D |
| Khaembah EN |
Simulation-based decision support for nitrogen management in vegetable production: The Sustainable Vegetable Systems (SVS) Tool |
Khaembah EN, Brown H, Barber A, Stenning H, Dellow S, Sharp J, Searle B |
https://doi.org/10.36334/modsim2025.B05.khaembah |
https://mssanz.org.au/modsim2025/files/B05.khaembah.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
K |
| Searle B |
Simulation-based decision support for nitrogen management in vegetable production: The Sustainable Vegetable Systems (SVS) Tool |
Khaembah EN, Brown H, Barber A, Stenning H, Dellow S, Sharp J, Searle B |
https://doi.org/10.36334/modsim2025.B05.khaembah |
https://mssanz.org.au/modsim2025/files/B05.khaembah.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
S |
| Sharp J |
Simulation-based decision support for nitrogen management in vegetable production: The Sustainable Vegetable Systems (SVS) Tool |
Khaembah EN, Brown H, Barber A, Stenning H, Dellow S, Sharp J, Searle B |
https://doi.org/10.36334/modsim2025.B05.khaembah |
https://mssanz.org.au/modsim2025/files/B05.khaembah.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
S |
| Stenning H |
Simulation-based decision support for nitrogen management in vegetable production: The Sustainable Vegetable Systems (SVS) Tool |
Khaembah EN, Brown H, Barber A, Stenning H, Dellow S, Sharp J, Searle B |
https://doi.org/10.36334/modsim2025.B05.khaembah |
https://mssanz.org.au/modsim2025/files/B05.khaembah.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
S |
| Anderson R |
Simulation-based decision-support tools in digital agriculture: Converting APSIM into point-and-click online tools |
Grewer U, Anderson R, Lai Y, Lyons B, Zull A, Pembleton K |
https://doi.org/10.36334/modsim2025.B04.grewer |
https://mssanz.org.au/modsim2025/files/B04.grewer.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
A |
| Grewer U |
Simulation-based decision-support tools in digital agriculture: Converting APSIM into point-and-click online tools |
Grewer U, Anderson R, Lai Y, Lyons B, Zull A, Pembleton K |
https://doi.org/10.36334/modsim2025.B04.grewer |
https://mssanz.org.au/modsim2025/files/B04.grewer.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
G |
| Lai Y |
Simulation-based decision-support tools in digital agriculture: Converting APSIM into point-and-click online tools |
Grewer U, Anderson R, Lai Y, Lyons B, Zull A, Pembleton K |
https://doi.org/10.36334/modsim2025.B04.grewer |
https://mssanz.org.au/modsim2025/files/B04.grewer.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
L |
| Lyons B |
Simulation-based decision-support tools in digital agriculture: Converting APSIM into point-and-click online tools |
Grewer U, Anderson R, Lai Y, Lyons B, Zull A, Pembleton K |
https://doi.org/10.36334/modsim2025.B04.grewer |
https://mssanz.org.au/modsim2025/files/B04.grewer.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
L |
| Pembleton K |
Simulation-based decision-support tools in digital agriculture: Converting APSIM into point-and-click online tools |
Grewer U, Anderson R, Lai Y, Lyons B, Zull A, Pembleton K |
https://doi.org/10.36334/modsim2025.B04.grewer |
https://mssanz.org.au/modsim2025/files/B04.grewer.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
P |
| Zull A |
Simulation-based decision-support tools in digital agriculture: Converting APSIM into point-and-click online tools |
Grewer U, Anderson R, Lai Y, Lyons B, Zull A, Pembleton K |
https://doi.org/10.36334/modsim2025.B04.grewer |
https://mssanz.org.au/modsim2025/files/B04.grewer.pdf |
B |
Biological systems |
B4 |
APSIM Developments: Livestock, pests and diseases, whole farm modelling, cloud computing, etc. |
Z |
| Carozzi M |
Soil carbon sequestration potential of Queensland under land use change and future climate scenarios |
Leo S, De Antoni Migliorati M, Carozzi M |
https://doi.org/10.36334/modsim2025.F13.leo |
https://mssanz.org.au/modsim2025/files/F13.leo.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
C |
| De Antoni Migliorati M |
Soil carbon sequestration potential of Queensland under land use change and future climate scenarios |
Leo S, De Antoni Migliorati M, Carozzi M |
https://doi.org/10.36334/modsim2025.F13.leo |
https://mssanz.org.au/modsim2025/files/F13.leo.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
D |
| Leo S |
Soil carbon sequestration potential of Queensland under land use change and future climate scenarios |
Leo S, De Antoni Migliorati M, Carozzi M |
https://doi.org/10.36334/modsim2025.F13.leo |
https://mssanz.org.au/modsim2025/files/F13.leo.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
L |
| Bishop T |
Soil property prediction under data scarcity using a tabular foundation model |
Deo R, Hoskin N, Filippi P, Bishop T |
https://doi.org/10.36334/modsim2025.F11.deo |
https://mssanz.org.au/modsim2025/files/F11.deo.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
B |
| Deo R |
Soil property prediction under data scarcity using a tabular foundation model |
Deo F, Chiew F, Vaze J |
https://doi.org/10.36334/modsim2025.F11.deo |
https://mssanz.org.au/modsim2025/files/F11.deo.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
D |
| Filippi P |
Soil property prediction under data scarcity using a tabular foundation model |
Deo F, Chiew F, Vaze J |
https://doi.org/10.36334/modsim2025.F11.deo |
https://mssanz.org.au/modsim2025/files/F11.deo.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
F |
| Hoskin N |
Soil property prediction under data scarcity using a tabular foundation model |
Deo F, Chiew F, Vaze J |
https://doi.org/10.36334/modsim2025.F11.deo |
https://mssanz.org.au/modsim2025/files/F11.deo.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
H |
| Gardner B |
Space-time image velocimetry for remote streamflow measurement using satellite video |
Gibbs M, Guglielmo M, Gardner B, Hughes J, Petheram C |
https://doi.org/10.36334/modsim2025.J03.gibbs |
https://mssanz.org.au/modsim2025/files/J03.gibbs.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
G |
| Gibbs MS |
Space-time image velocimetry for remote streamflow measurement using satellite video |
Gibbs M, Guglielmo M, Gardner B, Hughes J, Petheram C |
https://doi.org/10.36334/modsim2025.J03.gibbs |
https://mssanz.org.au/modsim2025/files/J03.gibbs.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
G |
| Guglielmo M |
Space-time image velocimetry for remote streamflow measurement using satellite video |
Gibbs M, Guglielmo M, Gardner B, Hughes J, Petheram C |
https://doi.org/10.36334/modsim2025.J03.gibbs |
https://mssanz.org.au/modsim2025/files/J03.gibbs.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
G |
| Hughes J |
Space-time image velocimetry for remote streamflow measurement using satellite video |
Gibbs M, Guglielmo M, Gardner B, Hughes J, Petheram C |
https://doi.org/10.36334/modsim2025.J03.gibbs |
https://mssanz.org.au/modsim2025/files/J03.gibbs.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
H |
| Petheram C |
Space-time image velocimetry for remote streamflow measurement using satellite video |
Gibbs M, Guglielmo M, Gardner B, Hughes J, Petheram C |
https://doi.org/10.36334/modsim2025.J03.gibbs |
https://mssanz.org.au/modsim2025/files/J03.gibbs.pdf |
J |
Water resources |
J3 |
Novel methods for data collection and predictive modelling in data sparse environments |
P |
| Chiew FHS |
Spatial and temporal variability of weather system contributions to rainfall in the Murray-Darling Basin |
Fu G, Peña-Arancibia JL, Zheng H, Yu Y, Chiew FHS, Post D |
https://doi.org/10.36334/modsim2025.G02.fu |
https://mssanz.org.au/modsim2025/files/G02.fu.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
C |
| Fu G (Guobin) |
Spatial and temporal variability of weather system contributions to rainfall in the Murray-Darling Basin |
Fu G, Peña-Arancibia JL, Zheng H, Yu Y, Chiew FHS, Post D |
https://doi.org/10.36334/modsim2025.G02.fu |
https://mssanz.org.au/modsim2025/files/G02.fu.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
F |
| Peña-Arancibia JL |
Spatial and temporal variability of weather system contributions to rainfall in the Murray-Darling Basin |
Fu G, Peña-Arancibia JL, Zheng H, Yu Y, Chiew FHS, Post D |
https://doi.org/10.36334/modsim2025.G02.fu |
https://mssanz.org.au/modsim2025/files/G02.fu.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
P |
| Post D |
Spatial and temporal variability of weather system contributions to rainfall in the Murray-Darling Basin |
Fu G, Peña-Arancibia JL, Zheng H, Yu Y, Chiew FHS, Post D |
https://doi.org/10.36334/modsim2025.G02.fu |
https://mssanz.org.au/modsim2025/files/G02.fu.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
P |
| Yu Y (YingYing) |
Spatial and temporal variability of weather system contributions to rainfall in the Murray-Darling Basin |
Fu G, Peña-Arancibia JL, Zheng H, Yu Y, Chiew FHS, Post D |
https://doi.org/10.36334/modsim2025.G02.fu |
https://mssanz.org.au/modsim2025/files/G02.fu.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Y |
| Zheng H (Hongzing) |
Spatial and temporal variability of weather system contributions to rainfall in the Murray-Darling Basin |
Fu G, Peña-Arancibia JL, Zheng H, Yu Y, Chiew FHS, Post D |
https://doi.org/10.36334/modsim2025.G02.fu |
https://mssanz.org.au/modsim2025/files/G02.fu.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Z |
| Li X (Xiaojuan) |
Spatial and temporal variation of surface temperatures in China based on long-term reanalysis data |
Zhang Y, Li X, Yin L |
https://doi.org/10.36334/modsim2025.G02.zhangy |
https://mssanz.org.au/modsim2025/files/G02.zhangy.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
L |
| Yin L (Lianwang) |
Spatial and temporal variation of surface temperatures in China based on long-term reanalysis data |
Zhang Y, Li X, Yin L |
https://doi.org/10.36334/modsim2025.G02.zhangy |
https://mssanz.org.au/modsim2025/files/G02.zhangy.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Y |
| Zhang Y (Yunfei) |
Spatial and temporal variation of surface temperatures in China based on long-term reanalysis data |
Zhang Y, Li X, Yin L |
https://doi.org/10.36334/modsim2025.G02.zhangy |
https://mssanz.org.au/modsim2025/files/G02.zhangy.pdf |
G |
Global change and natural hazards |
G2 |
Recent Advances of Earth Observations in Climate Change Impact Research |
Z |
| Bennett JC |
Spatially weighted fine-tuning of LSTMs for improved streamflow predictions in ungauged catchments |
Shokri A, Bennett JC, Robertson DE |
https://doi.org/10.36334/modsim2025.C07.shokri |
https://mssanz.org.au/modsim2025/files/C07.shokri.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
B |
| Robertson DE |
Spatially weighted fine-tuning of LSTMs for improved streamflow predictions in ungauged catchments |
Shokri A, Bennett JC, Robertson DE |
https://doi.org/10.36334/modsim2025.C07.shokri |
https://mssanz.org.au/modsim2025/files/C07.shokri.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
R |
| Shokri A |
Spatially weighted fine-tuning of LSTMs for improved streamflow predictions in ungauged catchments |
Shokri A, Bennett JC, Robertson DE |
https://doi.org/10.36334/modsim2025.C07.shokri |
https://mssanz.org.au/modsim2025/files/C07.shokri.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
S |
| Clark S |
Spatiotemporal groundwater predictions using explainable AI |
Clark S, Janardhanan S, Fu G |
https://doi.org/10.36334/modsim2025.C06.clark |
https://mssanz.org.au/modsim2025/files/C06.clark.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
C |
| Fu G (Guobin) |
Spatiotemporal groundwater predictions using explainable AI |
Clark S, Janardhanan S, Fu G |
https://doi.org/10.36334/modsim2025.C06.clark |
https://mssanz.org.au/modsim2025/files/C06.clark.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
F |
| Janardhanan S |
Spatiotemporal groundwater predictions using explainable AI |
Clark S, Janardhanan S, Fu G |
https://doi.org/10.36334/modsim2025.C06.clark |
https://mssanz.org.au/modsim2025/files/C06.clark.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
J |
| Jason K |
Statistical modelling of property and crop losses |
Jason K, Raveendran N, Zhu H, Li H, Sofronov G |
https://doi.org/10.36334/modsim2025.A04.jason |
https://mssanz.org.au/modsim2025/files/A04.jason.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
J |
| Li H |
Statistical modelling of property and crop losses |
Jason K, Raveendran N, Zhu H, Li H, Sofronov G |
https://doi.org/10.36334/modsim2025.A04.jason |
https://mssanz.org.au/modsim2025/files/A04.jason.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
L |
| Raveendran N |
Statistical modelling of property and crop losses |
Jason K, Raveendran N, Zhu H, Li H, Sofronov G |
https://doi.org/10.36334/modsim2025.A04.jason |
https://mssanz.org.au/modsim2025/files/A04.jason.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
R |
| Sofronov G |
Statistical modelling of property and crop losses |
Jason K, Raveendran N, Zhu H, Li H, Sofronov G |
https://doi.org/10.36334/modsim2025.A04.jason |
https://mssanz.org.au/modsim2025/files/A04.jason.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
S |
| Zhu H |
Statistical modelling of property and crop losses |
Jason K, Raveendran N, Zhu H, Li H, Sofronov G |
https://doi.org/10.36334/modsim2025.A04.jason |
https://mssanz.org.au/modsim2025/files/A04.jason.pdf |
A |
Applied and computational mathematics |
A4 |
Computational statistics and data analysis |
Z |
| Bouraoui F |
Step-wise calibration technique using SWAT model |
Pagliero L, Willems P, Bouraoui F, Malagò A, Diels J, McIntyre N |
https://doi.org/10.36334/modsim2025.J10.pagliero |
https://mssanz.org.au/modsim2025/files/J10.pagliero.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
B |
| Diels J |
Step-wise calibration technique using SWAT model |
Pagliero L, Willems P, Bouraoui F, Malagò A, Diels J, McIntyre N |
https://doi.org/10.36334/modsim2025.J10.pagliero |
https://mssanz.org.au/modsim2025/files/J10.pagliero.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
D |
| Malagò A |
Step-wise calibration technique using SWAT model |
Pagliero L, Willems P, Bouraoui F, Malagò A, Diels J, McIntyre N |
https://doi.org/10.36334/modsim2025.J10.pagliero |
https://mssanz.org.au/modsim2025/files/J10.pagliero.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
M |
| McIntyre N |
Step-wise calibration technique using SWAT model |
Pagliero L, Willems P, Bouraoui F, Malagò A, Diels J, McIntyre N |
https://doi.org/10.36334/modsim2025.J10.pagliero |
https://mssanz.org.au/modsim2025/files/J10.pagliero.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
M |
| Pagliero L |
Step-wise calibration technique using SWAT model |
Pagliero L, Willems P, Bouraoui F, Malagò A, Diels J, McIntyre N |
https://doi.org/10.36334/modsim2025.J10.pagliero |
https://mssanz.org.au/modsim2025/files/J10.pagliero.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
P |
| Willems P |
Step-wise calibration technique using SWAT model |
Pagliero L, Willems P, Bouraoui F, Malagò A, Diels J, McIntyre N |
https://doi.org/10.36334/modsim2025.J10.pagliero |
https://mssanz.org.au/modsim2025/files/J10.pagliero.pdf |
J |
Water resources |
J10 |
Advancements in Hydrological Predictions through Novel Sensing and Innovative Modelling Techniques |
W |
| Wong M |
Strategic adversarial analysis of a game theory security model |
Wong M |
https://doi.org/10.36334/modsim2025.M02.wong |
https://mssanz.org.au/modsim2025/files/M02.wong.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
W |
| Carlier R |
Strategic environmental water use: optimising wetland outcomes with ecological feedbacks |
Carlier R, Kuczera G, Rodriguez JF, Saco P |
https://doi.org/10.36334/modsim2025.F04.carlier |
https://mssanz.org.au/modsim2025/files/F04.carlier.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
C |
| Kuczera G |
Strategic environmental water use: optimising wetland outcomes with ecological feedbacks |
Carlier R, Kuczera G, Rodriguez JF, Saco P |
https://doi.org/10.36334/modsim2025.F04.carlier |
https://mssanz.org.au/modsim2025/files/F04.carlier.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
K |
| Rodriguez JF |
Strategic environmental water use: optimising wetland outcomes with ecological feedbacks |
Carlier R, Kuczera G, Rodriguez JF, Saco P |
https://doi.org/10.36334/modsim2025.F04.carlier |
https://mssanz.org.au/modsim2025/files/F04.carlier.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
R |
| Saco P |
Strategic environmental water use: optimising wetland outcomes with ecological feedbacks |
Carlier R, Kuczera G, Rodriguez JF, Saco P |
https://doi.org/10.36334/modsim2025.F04.carlier |
https://mssanz.org.au/modsim2025/files/F04.carlier.pdf |
F |
Environment and ecology |
F4 |
Exploring the multiple roles of managed water within river basins |
S |
| Amorsi N |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
A |
| Bokal S |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
B |
| Čerkasova N |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
Č |
| Cvejić R |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
C |
| Farkas C |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
F |
| Fribourg‑Blanc B |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
F |
| Fučík P |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
F |
| Glavan M |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
G |
| Honzak L |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
H |
| Krzeminska D |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
K |
| Lemann T |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
L |
| Monaco F |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
M |
| Nemes A |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
N |
| Nesheim I |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
N |
| Piniewski M |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
P |
| Schürz C |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
S |
| Strauch M |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
S |
| Szabó B |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
S |
| Volk M |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
V |
| Witing F |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
W |
| Wittekind C |
Strategies for water and nutrient retention in agricultural catchments linking modelling and optimization |
Volk M, Amorsi N, Bokal S, Čerkasova N, Cvejić R, Farkas C, Fribourg‑Blanc B, Fučík P, Glavan M, Honzak L, Krzeminska D, Lemann T, Monaco F, Nemes A, Nesheim I, Piniewski M, Schürz C, Strauch M, Szabó B, Witing F, Wittekind C |
https://doi.org/10.36334/modsim2025.F07.volk |
https://mssanz.org.au/modsim2025/files/F07.volk.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
W |
| Stancu M |
Streamlining modelling & reporting for continuous simulation modelling of stormwater pollutants and runoff |
Stancu M |
https://doi.org/10.36334/modsim2025.L03.stancu |
https://mssanz.org.au/modsim2025/files/L03.stancu.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
S |
| Chrystal C |
Sunwater Smart Schemes: Improving efficiency in water delivery |
Morales Y, Chrystal C, Hughes M |
https://doi.org/10.36334/modsim2025.F05.morales |
https://mssanz.org.au/modsim2025/files/F05.morales.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
C |
| Hughes M |
Sunwater Smart Schemes: Improving efficiency in water delivery |
Morales Y, Chrystal C, Hughes M |
https://doi.org/10.36334/modsim2025.F05.morales |
https://mssanz.org.au/modsim2025/files/F05.morales.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
H |
| Morales Y |
Sunwater Smart Schemes: Improving efficiency in water delivery |
Morales Y, Chrystal C, Hughes M |
https://doi.org/10.36334/modsim2025.F05.morales |
https://mssanz.org.au/modsim2025/files/F05.morales.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
M |
| Balasoiu DA |
SWAR: Evaluating the effect of distributed communication approaches on application effectiveness |
Balasoiu DA, Honhaga I, Judd G, Craggs DW, Campbell B, Szabo C |
https://doi.org/10.36334/modsim2025.M02.balasoiu |
https://mssanz.org.au/modsim2025/files/M02.balasoiu.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
B |
| Campbell BC (Benjamin) |
SWAR: Evaluating the effect of distributed communication approaches on application effectiveness |
Balasoiu DA, Honhaga I, Judd G, Craggs DW, Campbell B, Szabo C |
https://doi.org/10.36334/modsim2025.M02.balasoiu |
https://mssanz.org.au/modsim2025/files/M02.balasoiu.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
C |
| Craggs DW |
SWAR: Evaluating the effect of distributed communication approaches on application effectiveness |
Balasoiu DA, Honhaga I, Judd G, Craggs DW, Campbell B, Szabo C |
https://doi.org/10.36334/modsim2025.M02.balasoiu |
https://mssanz.org.au/modsim2025/files/M02.balasoiu.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
C |
| Honhaga I |
SWAR: Evaluating the effect of distributed communication approaches on application effectiveness |
Balasoiu DA, Honhaga I, Judd G, Craggs DW, Campbell B, Szabo C |
https://doi.org/10.36334/modsim2025.M02.balasoiu |
https://mssanz.org.au/modsim2025/files/M02.balasoiu.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
H |
| Judd G |
SWAR: Evaluating the effect of distributed communication approaches on application effectiveness |
Balasoiu DA, Honhaga I, Judd G, Craggs DW, Campbell B, Szabo C |
https://doi.org/10.36334/modsim2025.M02.balasoiu |
https://mssanz.org.au/modsim2025/files/M02.balasoiu.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
J |
| Szabo C |
SWAR: Evaluating the effect of distributed communication approaches on application effectiveness |
Balasoiu DA, Honhaga I, Judd G, Craggs DW, Campbell B, Szabo C |
https://doi.org/10.36334/modsim2025.M02.balasoiu |
https://mssanz.org.au/modsim2025/files/M02.balasoiu.pdf |
M |
Operations Research |
M2 |
Simulation modelling and analysis |
S |
| Leopold M |
Synthesising hydrological knowledge in a semi-dry region with low-permeability unsaturated zone using Modflow-6 |
Miotlinski K, Leopold M, Thompson S |
https://doi.org/10.36334/modsim2025.A02.miotlinski |
https://mssanz.org.au/modsim2025/files/A02.miotlinski.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
L |
| Miotlinski K |
Synthesising hydrological knowledge in a semi-dry region with low-permeability unsaturated zone using Modflow-6 |
Miotlinski K, Leopold M, Thompson S |
https://doi.org/10.36334/modsim2025.A02.miotlinski |
https://mssanz.org.au/modsim2025/files/A02.miotlinski.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
M |
| Thompson S |
Synthesising hydrological knowledge in a semi-dry region with low-permeability unsaturated zone using Modflow-6 |
Miotlinski K, Leopold M, Thompson S |
https://doi.org/10.36334/modsim2025.A02.miotlinski |
https://mssanz.org.au/modsim2025/files/A02.miotlinski.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
T |
| Cochrane T |
Systems modelling of technological opportunities for a sustainable and profitable dairy sector in New Zealand |
Ekanayake C, Cochrane T, Vannier C |
https://doi.org/10.36334/modsim2025.B05.ekanayake |
https://mssanz.org.au/modsim2025/files/B05.ekanayake.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
C |
| Ekanayake C (Chavi) |
Systems modelling of technological opportunities for a sustainable and profitable dairy sector in New Zealand |
Ekanayake C, Cochrane T, Vannier C |
https://doi.org/10.36334/modsim2025.B05.ekanayake |
https://mssanz.org.au/modsim2025/files/B05.ekanayake.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
E |
| Vannier C |
Systems modelling of technological opportunities for a sustainable and profitable dairy sector in New Zealand |
Ekanayake C, Cochrane T, Vannier C |
https://doi.org/10.36334/modsim2025.B05.ekanayake |
https://mssanz.org.au/modsim2025/files/B05.ekanayake.pdf |
B |
Biological systems |
B5 |
Agricultural Systems |
V |
| Kavetski D |
Tailored calibration of stochastic weather generators for enhanced hydrological system evaluation |
McInerney D, Westra S, Leonard M, Kavetski D, Thyer M, Maier HR |
https://doi.org/10.36334/modsim2025.K04.mcinerney |
https://mssanz.org.au/modsim2025/files/K04.mcinerney.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
K |
| Leonard M (Michael) |
Tailored calibration of stochastic weather generators for enhanced hydrological system evaluation |
McInerney D, Westra S, Leonard M, Kavetski D, Thyer M, Maier HR |
https://doi.org/10.36334/modsim2025.K04.mcinerney |
https://mssanz.org.au/modsim2025/files/K04.mcinerney.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
L |
| Maier HR |
Tailored calibration of stochastic weather generators for enhanced hydrological system evaluation |
McInerney D, Westra S, Leonard M, Kavetski D, Thyer M, Maier HR |
https://doi.org/10.36334/modsim2025.K04.mcinerney |
https://mssanz.org.au/modsim2025/files/K04.mcinerney.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
M |
| McInerney D |
Tailored calibration of stochastic weather generators for enhanced hydrological system evaluation |
McInerney D, Westra S, Leonard M, Kavetski D, Thyer M, Maier HR |
https://doi.org/10.36334/modsim2025.K04.mcinerney |
https://mssanz.org.au/modsim2025/files/K04.mcinerney.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
M |
| Thyer M |
Tailored calibration of stochastic weather generators for enhanced hydrological system evaluation |
McInerney D, Westra S, Leonard M, Kavetski D, Thyer M, Maier HR |
https://doi.org/10.36334/modsim2025.K04.mcinerney |
https://mssanz.org.au/modsim2025/files/K04.mcinerney.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
T |
| Westra S |
Tailored calibration of stochastic weather generators for enhanced hydrological system evaluation |
McInerney D, Westra S, Leonard M, Kavetski D, Thyer M, Maier HR |
https://doi.org/10.36334/modsim2025.K04.mcinerney |
https://mssanz.org.au/modsim2025/files/K04.mcinerney.pdf |
K |
Hydroclimate |
K4 |
Understanding and modelling catchment behaviour in a variable and changing climate |
W |
| Gan C |
Tariff risks and stock market performance: Evidence from multivariable simultaneous quantile |
Ho LT, Gan C |
https://doi.org/10.36334/modsim2025.D04.ho |
https://mssanz.org.au/modsim2025/files/D04.ho.pdf |
D |
Economics and finance |
D4 |
International Trade, Supply Chains, and Global Markets |
G |
| Ho LT |
Tariff risks and stock market performance: Evidence from multivariable simultaneous quantile |
Ho LT, Gan C |
https://doi.org/10.36334/modsim2025.D04.ho |
https://mssanz.org.au/modsim2025/files/D04.ho.pdf |
D |
Economics and finance |
D4 |
International Trade, Supply Chains, and Global Markets |
H |
| Chen M (Menghan) |
Temporal dynamics and controlling factors of CO2 fluxes of the Asia’s largest artificial freshwater lake |
Lu M, Cheng L, Xu L, Fu C, Qin S, Chen M, Xu C, Zhang L, Liu P |
https://doi.org/10.36334/modsim2025.F10.lu |
https://mssanz.org.au/modsim2025/files/F10.lu.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
C |
| Cheng L (Lei) |
Temporal dynamics and controlling factors of CO2 fluxes of the Asia’s largest artificial freshwater lake |
Lu M, Cheng L, Xu L, Fu C, Qin S, Chen M, Xu C, Zhang L, Liu P |
https://doi.org/10.36334/modsim2025.F10.lu |
https://mssanz.org.au/modsim2025/files/F10.lu.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
C |
| Fu C (Chenhao) |
Temporal dynamics and controlling factors of CO2 fluxes of the Asia’s largest artificial freshwater lake |
Lu M, Cheng L, Xu L, Fu C, Qin S, Chen M, Xu C, Zhang L, Liu P |
https://doi.org/10.36334/modsim2025.F10.lu |
https://mssanz.org.au/modsim2025/files/F10.lu.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
F |
| Liu P (Pan) |
Temporal dynamics and controlling factors of CO2 fluxes of the Asia’s largest artificial freshwater lake |
Lu M, Cheng L, Xu L, Fu C, Qin S, Chen M, Xu C, Zhang L, Liu P |
https://doi.org/10.36334/modsim2025.F10.lu |
https://mssanz.org.au/modsim2025/files/F10.lu.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
L |
| Lu M (Mingshen) |
Temporal dynamics and controlling factors of CO2 fluxes of the Asia’s largest artificial freshwater lake |
Lu M, Cheng L, Xu L, Fu C, Qin S, Chen M, Xu C, Zhang L, Liu P |
https://doi.org/10.36334/modsim2025.F10.lu |
https://mssanz.org.au/modsim2025/files/F10.lu.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
L |
| Qin S (Shujing) |
Temporal dynamics and controlling factors of CO2 fluxes of the Asia’s largest artificial freshwater lake |
Lu M, Cheng L, Xu L, Fu C, Qin S, Chen M, Xu C, Zhang L, Liu P |
https://doi.org/10.36334/modsim2025.F10.lu |
https://mssanz.org.au/modsim2025/files/F10.lu.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
Q |
| Xu C (Changjiang) |
Temporal dynamics and controlling factors of CO2 fluxes of the Asia’s largest artificial freshwater lake |
Lu M, Cheng L, Xu L, Fu C, Qin S, Chen M, Xu C, Zhang L, Liu P |
https://doi.org/10.36334/modsim2025.F10.lu |
https://mssanz.org.au/modsim2025/files/F10.lu.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
X |
| Xu L (Liyong) |
Temporal dynamics and controlling factors of CO2 fluxes of the Asia’s largest artificial freshwater lake |
Lu M, Cheng L, Xu L, Fu C, Qin S, Chen M, Xu C, Zhang L, Liu P |
https://doi.org/10.36334/modsim2025.F10.lu |
https://mssanz.org.au/modsim2025/files/F10.lu.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
X |
| Zhang L (Lu) |
Temporal dynamics and controlling factors of CO2 fluxes of the Asia’s largest artificial freshwater lake |
Lu M, Cheng L, Xu L, Fu C, Qin S, Chen M, Xu C, Zhang L, Liu P |
https://doi.org/10.36334/modsim2025.F10.lu |
https://mssanz.org.au/modsim2025/files/F10.lu.pdf |
F |
Environment and ecology |
F10 |
Applications of artificial neural networks and generative artificial intelligence to environmental problems |
Z |
| Kankanige D |
Terrestrial water storage in wildfire forecast |
Kankanige D, Liu Y, Sharma A |
https://doi.org/10.36334/modsim2025.G08.kankanige |
https://mssanz.org.au/modsim2025/files/G08.kankanige.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
K |
| Liu Y (Yi) |
Terrestrial water storage in wildfire forecast |
Kankanige D, Liu Y, Sharma A |
https://doi.org/10.36334/modsim2025.G08.kankanige |
https://mssanz.org.au/modsim2025/files/G08.kankanige.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
L |
| Sharma A |
Terrestrial water storage in wildfire forecast |
Kankanige D, Liu Y, Sharma A |
https://doi.org/10.36334/modsim2025.G08.kankanige |
https://mssanz.org.au/modsim2025/files/G08.kankanige.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
S |
| Cook S |
The addition of large-scale WSUD alternatives and their effect on kerbside stormwater systems |
Cook S |
https://doi.org/10.36334/modsim2025.L03.cook |
https://mssanz.org.au/modsim2025/files/L03.cook.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
C |
| Ashbolt SC |
The challenges and rewards of collaborative environmental flow modelling |
Ashbolt SC, Szemis J, May R |
https://doi.org/10.36334/modsim2025.J02.ashbolt |
https://mssanz.org.au/modsim2025/files/J02.ashbolt.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
A |
| May R |
The challenges and rewards of collaborative environmental flow modelling |
Ashbolt SC, Szemis J, May R |
https://doi.org/10.36334/modsim2025.J02.ashbolt |
https://mssanz.org.au/modsim2025/files/J02.ashbolt.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
M |
| Szemis J |
The challenges and rewards of collaborative environmental flow modelling |
Ashbolt SC, Szemis J, May R |
https://doi.org/10.36334/modsim2025.J02.ashbolt |
https://mssanz.org.au/modsim2025/files/J02.ashbolt.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
S |
| Blachut C |
The effect of ignition protocol on dynamic fire propagation in the Bridger Foothills fire |
Blachut C, Sharples JJ, Cheung KKW, Del Favero D |
https://doi.org/10.36334/modsim2025.G08.blachut |
https://mssanz.org.au/modsim2025/files/G08.blachut.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
B |
| Cheung KKW |
The effect of ignition protocol on dynamic fire propagation in the Bridger Foothills fire |
Blachut C, Sharples JJ, Cheung KKW, Del Favero D |
https://doi.org/10.36334/modsim2025.G08.blachut |
https://mssanz.org.au/modsim2025/files/G08.blachut.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
C |
| Del Favero D |
The effect of ignition protocol on dynamic fire propagation in the Bridger Foothills fire |
Blachut C, Sharples JJ, Cheung KKW, Del Favero D |
https://doi.org/10.36334/modsim2025.G08.blachut |
https://mssanz.org.au/modsim2025/files/G08.blachut.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
D |
| Sharples JJ |
The effect of ignition protocol on dynamic fire propagation in the Bridger Foothills fire |
Blachut C, Sharples JJ, Cheung KKW, Del Favero D |
https://doi.org/10.36334/modsim2025.G08.blachut |
https://mssanz.org.au/modsim2025/files/G08.blachut.pdf |
G |
Global change and natural hazards |
G8 |
Modelling of bushfire dynamics, fire weather, impact and risk |
S |
| Buber A (Alexander) |
The impact of climate change on the hydrological and water management situation in the Lower Don |
Buber A, Buber A |
https://doi.org/10.36334/modsim2025.J02.buber |
https://mssanz.org.au/modsim2025/files/J02.buber.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
B |
| Buber A (Alina) |
The impact of climate change on the hydrological and water management situation in the Lower Don |
Buber A, Buber A |
https://doi.org/10.36334/modsim2025.J02.buber |
https://mssanz.org.au/modsim2025/files/J02.buber.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
B |
| Bell ST |
The Minerva data platform – towards a data platform for research applications |
Bell ST, Liu D, Philip A, Cerecke C, Tang J, Nichols M, Gilmore Z, Lin HT |
https://doi.org/10.36334/modsim2025.C05.bell |
https://mssanz.org.au/modsim2025/files/C05.bell.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
B |
| Cerecke C |
The Minerva data platform – towards a data platform for research applications |
Bell ST, Liu D, Philip A, Cerecke C, Tang J, Nichols M, Gilmore Z, Lin HT |
https://doi.org/10.36334/modsim2025.C05.bell |
https://mssanz.org.au/modsim2025/files/C05.bell.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
C |
| Gilmore Z |
The Minerva data platform – towards a data platform for research applications |
Bell ST, Liu D, Philip A, Cerecke C, Tang J, Nichols M, Gilmore Z, Lin HT |
https://doi.org/10.36334/modsim2025.C05.bell |
https://mssanz.org.au/modsim2025/files/C05.bell.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
G |
| Lin HT |
The Minerva data platform – towards a data platform for research applications |
Bell ST, Liu D, Philip A, Cerecke C, Tang J, Nichols M, Gilmore Z, Lin HT |
https://doi.org/10.36334/modsim2025.C05.bell |
https://mssanz.org.au/modsim2025/files/C05.bell.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
L |
| Liu D |
The Minerva data platform – towards a data platform for research applications |
Bell ST, Liu D, Philip A, Cerecke C, Tang J, Nichols M, Gilmore Z, Lin HT |
https://doi.org/10.36334/modsim2025.C05.bell |
https://mssanz.org.au/modsim2025/files/C05.bell.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
L |
| Nichols M |
The Minerva data platform – towards a data platform for research applications |
Bell ST, Liu D, Philip A, Cerecke C, Tang J, Nichols M, Gilmore Z, Lin HT |
https://doi.org/10.36334/modsim2025.C05.bell |
https://mssanz.org.au/modsim2025/files/C05.bell.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
N |
| Philip A |
The Minerva data platform – towards a data platform for research applications |
Bell ST, Liu D, Philip A, Cerecke C, Tang J, Nichols M, Gilmore Z, Lin HT |
https://doi.org/10.36334/modsim2025.C05.bell |
https://mssanz.org.au/modsim2025/files/C05.bell.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
P |
| Tang J |
The Minerva data platform – towards a data platform for research applications |
Bell ST, Liu D, Philip A, Cerecke C, Tang J, Nichols M, Gilmore Z, Lin HT |
https://doi.org/10.36334/modsim2025.C05.bell |
https://mssanz.org.au/modsim2025/files/C05.bell.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
T |
| Ananthapavan J |
The modelled cost-effectiveness of a prevention program targeting both eating disorders and high BMI |
Le LK, Tan EJ, Hay P, Ananthapavan J, Lee YY, Mihalopoulos C |
https://doi.org/10.36334/modsim2025.H05.le |
https://mssanz.org.au/modsim2025/files/H05.le.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
A |
| Hay P |
The modelled cost-effectiveness of a prevention program targeting both eating disorders and high BMI |
Le LK, Tan EJ, Hay P, Ananthapavan J, Lee YY, Mihalopoulos C |
https://doi.org/10.36334/modsim2025.H05.le |
https://mssanz.org.au/modsim2025/files/H05.le.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
H |
| Le LK-D |
The modelled cost-effectiveness of a prevention program targeting both eating disorders and high BMI |
Le LK, Tan EJ, Hay P, Ananthapavan J, Lee YY, Mihalopoulos C |
https://doi.org/10.36334/modsim2025.H05.le |
https://mssanz.org.au/modsim2025/files/H05.le.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
L |
| Lee YY |
The modelled cost-effectiveness of a prevention program targeting both eating disorders and high BMI |
Le LK, Tan EJ, Hay P, Ananthapavan J, Lee YY, Mihalopoulos C |
https://doi.org/10.36334/modsim2025.H05.le |
https://mssanz.org.au/modsim2025/files/H05.le.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
L |
| Mihalopoulos C |
The modelled cost-effectiveness of a prevention program targeting both eating disorders and high BMI |
Le LK, Tan EJ, Hay P, Ananthapavan J, Lee YY, Mihalopoulos C |
https://doi.org/10.36334/modsim2025.H05.le |
https://mssanz.org.au/modsim2025/files/H05.le.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
M |
| Tan EJ |
The modelled cost-effectiveness of a prevention program targeting both eating disorders and high BMI |
Le LK, Tan EJ, Hay P, Ananthapavan J, Lee YY, Mihalopoulos C |
https://doi.org/10.36334/modsim2025.H05.le |
https://mssanz.org.au/modsim2025/files/H05.le.pdf |
H |
Health and biosecurity |
H5 |
Development and applications of simulation models in health economics |
T |
| Nathan R |
The need to avoid determinism and weak links in modelling chains when assessing climate impacts |
Nathan R |
https://doi.org/10.36334/modsim2025.J07.nathan |
https://mssanz.org.au/modsim2025/files/J07.nathan.pdf |
J |
Water resources |
J7 |
The path forward for hydroclimate risk assessments - advancing science, modelling and management to support decision making in large river basins |
N |
| Weng H |
The numerical modeling study of discharging brine into the Persian Gulf of Saudi Arabia |
Weng H, Yu M |
https://doi.org/10.36334/modsim2025.L02.weng |
https://mssanz.org.au/modsim2025/files/L02.weng.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
W |
| Yu M |
The numerical modeling study of discharging brine into the Persian Gulf of Saudi Arabia |
Weng H, Yu M |
https://doi.org/10.36334/modsim2025.L02.weng |
https://mssanz.org.au/modsim2025/files/L02.weng.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
Y |
| Gan C (Christopher) |
The relationship between FinTech adoption, financial inclusion and poverty in rural Thailand |
Khwankaew N, Gan C, Ho LT |
https://doi.org/10.36334/modsim2025.D06.khwankaew |
https://mssanz.org.au/modsim2025/files/D06.khwankaew.pdf |
D |
Economics and finance |
D6 |
Applications of new technologies or methods in economics and finance |
G |
| Ho LT |
The relationship between FinTech adoption, financial inclusion and poverty in rural Thailand |
Khwankaew N, Gan C, Ho LT |
https://doi.org/10.36334/modsim2025.D06.khwankaew |
https://mssanz.org.au/modsim2025/files/D06.khwankaew.pdf |
D |
Economics and finance |
D6 |
Applications of new technologies or methods in economics and finance |
H |
| Khwankaew N |
The relationship between FinTech adoption, financial inclusion and poverty in rural Thailand |
Khwankaew N, Gan C, Ho LT |
https://doi.org/10.36334/modsim2025.D06.khwankaew |
https://mssanz.org.au/modsim2025/files/D06.khwankaew.pdf |
D |
Economics and finance |
D6 |
Applications of new technologies or methods in economics and finance |
K |
| Ghasemi M |
The role of artificial intelligence techniques in forecasting renewable energy sources |
Johnson SW, Nazari A, Ghasemi M, Thiruvay D, van der Meer R, Shiri F |
https://doi.org/10.36334/modsim2025.E04.johnson |
https://mssanz.org.au/modsim2025/files/E04.johnson.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
G |
| Johnson SW |
The role of artificial intelligence techniques in forecasting renewable energy sources |
Johnson SW, Nazari A, Ghasemi M, Thiruvay D, van der Meer R, Shiri F |
https://doi.org/10.36334/modsim2025.E04.johnson |
https://mssanz.org.au/modsim2025/files/E04.johnson.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
J |
| Nazari A |
The role of artificial intelligence techniques in forecasting renewable energy sources |
Johnson SW, Nazari A, Ghasemi M, Thiruvay D, van der Meer R, Shiri F |
https://doi.org/10.36334/modsim2025.E04.johnson |
https://mssanz.org.au/modsim2025/files/E04.johnson.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
N |
| Shiri F |
The role of artificial intelligence techniques in forecasting renewable energy sources |
Johnson SW, Nazari A, Ghasemi M, Thiruvay D, van der Meer R, Shiri F |
https://doi.org/10.36334/modsim2025.E04.johnson |
https://mssanz.org.au/modsim2025/files/E04.johnson.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
S |
| Thiruvay D |
The role of artificial intelligence techniques in forecasting renewable energy sources |
Johnson SW, Nazari A, Ghasemi M, Thiruvay D, van der Meer R, Shiri F |
https://doi.org/10.36334/modsim2025.E04.johnson |
https://mssanz.org.au/modsim2025/files/E04.johnson.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
T |
| van der Meer R |
The role of artificial intelligence techniques in forecasting renewable energy sources |
Johnson SW, Nazari A, Ghasemi M, Thiruvay D, van der Meer R, Shiri F |
https://doi.org/10.36334/modsim2025.E04.johnson |
https://mssanz.org.au/modsim2025/files/E04.johnson.pdf |
E |
Energy, integrated infrastructure and urban planning |
E4 |
AI assessment of distributed energy resources and variable renewable energy systems |
v |
| Brown H (Hamish) |
The struggles of software engineering in a science-based context |
Holzworth D, Huth N, Snow V, Brown H, Cichota R, Paroz A, Rich J |
https://doi.org/10.36334/modsim2025.B01.holzworth |
https://mssanz.org.au/modsim2025/files/B01.holzworth.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
B |
| Cichota R |
The struggles of software engineering in a science-based context |
Holzworth D, Huth N, Snow V, Brown H, Cichota R, Paroz A, Rich J |
https://doi.org/10.36334/modsim2025.B01.holzworth |
https://mssanz.org.au/modsim2025/files/B01.holzworth.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
C |
| Holzworth D |
The struggles of software engineering in a science-based context |
Holzworth D, Huth N, Snow V, Brown H, Cichota R, Paroz A, Rich J |
https://doi.org/10.36334/modsim2025.B01.holzworth |
https://mssanz.org.au/modsim2025/files/B01.holzworth.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
H |
| Huth N |
The struggles of software engineering in a science-based context |
Holzworth D, Huth N, Snow V, Brown H, Cichota R, Paroz A, Rich J |
https://doi.org/10.36334/modsim2025.B01.holzworth |
https://mssanz.org.au/modsim2025/files/B01.holzworth.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
H |
| Paroz A |
The struggles of software engineering in a science-based context |
Holzworth D, Huth N, Snow V, Brown H, Cichota R, Paroz A, Rich J |
https://doi.org/10.36334/modsim2025.B01.holzworth |
https://mssanz.org.au/modsim2025/files/B01.holzworth.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
P |
| Rich J |
The struggles of software engineering in a science-based context |
Holzworth D, Huth N, Snow V, Brown H, Cichota R, Paroz A, Rich J |
https://doi.org/10.36334/modsim2025.B01.holzworth |
https://mssanz.org.au/modsim2025/files/B01.holzworth.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
R |
| Snow V |
The struggles of software engineering in a science-based context |
Holzworth D, Huth N, Snow V, Brown H, Cichota R, Paroz A, Rich J |
https://doi.org/10.36334/modsim2025.B01.holzworth |
https://mssanz.org.au/modsim2025/files/B01.holzworth.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
S |
| Holzworth D |
Thirty years of APSIM modelling: Reflections on the journey, past, present and future |
Keating B, Holzworth D |
https://doi.org/10.36334/modsim2025.B01.keating |
https://mssanz.org.au/modsim2025/files/B01.keating.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
H |
| Keating B |
Thirty years of APSIM modelling: Reflections on the journey, past, present and future |
Keating B, Holzworth D |
https://doi.org/10.36334/modsim2025.B01.keating |
https://mssanz.org.au/modsim2025/files/B01.keating.pdf |
B |
Biological systems |
B1 |
APSIM 30-Year Symposium: Shaping the Future of Agricultural Modelling |
K |
| Bishop AN |
Time-uniform universal approximation and recurrent neural networks |
Bishop AN |
https://doi.org/10.36334/modsim2025.C06.bishop |
https://mssanz.org.au/modsim2025/files/C06.bishop.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
B |
| Evans N |
Toward an Internet of Things data governance approach |
Seo S, Evans N, Velasquez D |
https://doi.org/10.36334/modsim2025.C05.seo |
https://mssanz.org.au/modsim2025/files/C05.seo.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
E |
| Seo S |
Toward an Internet of Things data governance approach |
Seo S, Evans N, Velasquez D |
https://doi.org/10.36334/modsim2025.C05.seo |
https://mssanz.org.au/modsim2025/files/C05.seo.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
S |
| Velasquez D |
Toward an Internet of Things data governance approach |
Seo S, Evans N, Velasquez D |
https://doi.org/10.36334/modsim2025.C05.seo |
https://mssanz.org.au/modsim2025/files/C05.seo.pdf |
C |
Computer science and engineering |
C5 |
Systems for Supporting the Re-use of Data – The Backbone of Digital Transformation |
V |
| Freebairn A |
Toward long-range forecasting of ecological outcomes |
Robertson D E, Teng J, Peña‑Arancibia J L, Schepen A, McGinness H, Jackson M V, Ticehurst C, Freebairn A, Shokri A |
https://doi.org/10.36334/modsim2025.K06.robertson |
https://mssanz.org.au/modsim2025/files/K06.robertson.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
F |
| Jackson MV |
Toward long-range forecasting of ecological outcomes |
Robertson D E, Teng J, Peña‑Arancibia J L, Schepen A, McGinness H, Jackson M V, Ticehurst C, Freebairn A, Shokri A |
https://doi.org/10.36334/modsim2025.K06.robertson |
https://mssanz.org.au/modsim2025/files/K06.robertson.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
J |
| McGinness H |
Toward long-range forecasting of ecological outcomes |
Robertson D E, Teng J, Peña‑Arancibia J L, Schepen A, McGinness H, Jackson M V, Ticehurst C, Freebairn A, Shokri A |
https://doi.org/10.36334/modsim2025.K06.robertson |
https://mssanz.org.au/modsim2025/files/K06.robertson.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
M |
| Peña‑Arancibia JL |
Toward long-range forecasting of ecological outcomes |
Robertson D E, Teng J, Peña‑Arancibia J L, Schepen A, McGinness H, Jackson M V, Ticehurst C, Freebairn A, Shokri A |
https://doi.org/10.36334/modsim2025.K06.robertson |
https://mssanz.org.au/modsim2025/files/K06.robertson.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
P |
| Robertson DE |
Toward long-range forecasting of ecological outcomes |
Robertson D E, Teng J, Peña‑Arancibia J L, Schepen A, McGinness H, Jackson M V, Ticehurst C, Freebairn A, Shokri A |
https://doi.org/10.36334/modsim2025.K06.robertson |
https://mssanz.org.au/modsim2025/files/K06.robertson.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
R |
| Schepen A |
Toward long-range forecasting of ecological outcomes |
Robertson D E, Teng J, Peña‑Arancibia J L, Schepen A, McGinness H, Jackson M V, Ticehurst C, Freebairn A, Shokri A |
https://doi.org/10.36334/modsim2025.K06.robertson |
https://mssanz.org.au/modsim2025/files/K06.robertson.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
S |
| Shokri A |
Toward long-range forecasting of ecological outcomes |
Robertson D E, Teng J, Peña‑Arancibia J L, Schepen A, McGinness H, Jackson M V, Ticehurst C, Freebairn A, Shokri A |
https://doi.org/10.36334/modsim2025.K06.robertson |
https://mssanz.org.au/modsim2025/files/K06.robertson.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
S |
| Teng J |
Toward long-range forecasting of ecological outcomes |
Robertson D E, Teng J, Peña‑Arancibia J L, Schepen A, McGinness H, Jackson M V, Ticehurst C, Freebairn A, Shokri A |
https://doi.org/10.36334/modsim2025.K06.robertson |
https://mssanz.org.au/modsim2025/files/K06.robertson.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
T |
| Ticehurst C |
Toward long-range forecasting of ecological outcomes |
Robertson D E, Teng J, Peña‑Arancibia J L, Schepen A, McGinness H, Jackson M V, Ticehurst C, Freebairn A, Shokri A |
https://doi.org/10.36334/modsim2025.K06.robertson |
https://mssanz.org.au/modsim2025/files/K06.robertson.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
T |
| Farooq U |
Toward modelling termite impacts on carbon stability and methane emissions in greenhouse gas modelling |
Farooq U, Pasut C, Wang YP, Macdonald B, Karunaratne S |
https://doi.org/10.36334/modsim2025.F01.farooq |
https://mssanz.org.au/modsim2025/files/F01.farooq.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
F |
| Karunaratne S |
Toward modelling termite impacts on carbon stability and methane emissions in greenhouse gas modelling |
Farooq U, Pasut C, Wang YP, Macdonald B, Karunaratne S |
https://doi.org/10.36334/modsim2025.F01.farooq |
https://mssanz.org.au/modsim2025/files/F01.farooq.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
K |
| Macdonald B |
Toward modelling termite impacts on carbon stability and methane emissions in greenhouse gas modelling |
Farooq U, Pasut C, Wang YP, Macdonald B, Karunaratne S |
https://doi.org/10.36334/modsim2025.F01.farooq |
https://mssanz.org.au/modsim2025/files/F01.farooq.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
M |
| Pasut C |
Toward modelling termite impacts on carbon stability and methane emissions in greenhouse gas modelling |
Farooq U, Pasut C, Wang YP, Macdonald B, Karunaratne S |
https://doi.org/10.36334/modsim2025.F01.farooq |
https://mssanz.org.au/modsim2025/files/F01.farooq.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
P |
| Wang Y-P |
Toward modelling termite impacts on carbon stability and methane emissions in greenhouse gas modelling |
Farooq U, Pasut C, Wang YP, Macdonald B, Karunaratne S |
https://doi.org/10.36334/modsim2025.F01.farooq |
https://mssanz.org.au/modsim2025/files/F01.farooq.pdf |
F |
Environment and ecology |
F1 |
Ecological and environmental modelling using a combination of mathematical and statistical approaches |
W |
| Heal MR |
Towards a globally nested EMEP4UK model |
Tan DY, Vieno M, Nemitz E, Heal MR, Stevenson DS, Reis S |
https://doi.org/10.36334/modsim2025.G07.tan |
https://mssanz.org.au/modsim2025/files/G07.tan.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
H |
| Nemitz E |
Towards a globally nested EMEP4UK model |
Tan DY, Vieno M, Nemitz E, Heal MR, Stevenson DS, Reis S |
https://doi.org/10.36334/modsim2025.G07.tan |
https://mssanz.org.au/modsim2025/files/G07.tan.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
N |
| Reis S |
Towards a globally nested EMEP4UK model |
Tan DY, Vieno M, Nemitz E, Heal MR, Stevenson DS, Reis S |
https://doi.org/10.36334/modsim2025.G07.tan |
https://mssanz.org.au/modsim2025/files/G07.tan.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
R |
| Stevenson DS |
Towards a globally nested EMEP4UK model |
Tan DY, Vieno M, Nemitz E, Heal MR, Stevenson DS, Reis S |
https://doi.org/10.36334/modsim2025.G07.tan |
https://mssanz.org.au/modsim2025/files/G07.tan.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
S |
| Tan DYT |
Towards a globally nested EMEP4UK model |
Tan DY, Vieno M, Nemitz E, Heal MR, Stevenson DS, Reis S |
https://doi.org/10.36334/modsim2025.G07.tan |
https://mssanz.org.au/modsim2025/files/G07.tan.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
T |
| Vieno M |
Towards a globally nested EMEP4UK model |
Tan DY, Vieno M, Nemitz E, Heal MR, Stevenson DS, Reis S |
https://doi.org/10.36334/modsim2025.G07.tan |
https://mssanz.org.au/modsim2025/files/G07.tan.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
V |
| Hamilton D |
Towards a reference GLM-AED model for wetlands in Great Barrier Reef catchments |
Pagliero L, Legesse N, Hamilton D, Weber T, Nguyen H, Rahman J, Waltham N |
https://doi.org/10.36334/modsim2025.L02.pagliero |
https://mssanz.org.au/modsim2025/files/L02.pagliero.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
H |
| Legesse N |
Towards a reference GLM-AED model for wetlands in Great Barrier Reef catchments |
Pagliero L, Legesse N, Hamilton D, Weber T, Nguyen H, Rahman J, Waltham N |
https://doi.org/10.36334/modsim2025.L02.pagliero |
https://mssanz.org.au/modsim2025/files/L02.pagliero.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
L |
| Nguyen H |
Towards a reference GLM-AED model for wetlands in Great Barrier Reef catchments |
Pagliero L, Legesse N, Hamilton D, Weber T, Nguyen H, Rahman J, Waltham N |
https://doi.org/10.36334/modsim2025.L02.pagliero |
https://mssanz.org.au/modsim2025/files/L02.pagliero.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
N |
| Pagliero L |
Towards a reference GLM-AED model for wetlands in Great Barrier Reef catchments |
Pagliero L, Legesse N, Hamilton D, Weber T, Nguyen H, Rahman J, Waltham N |
https://doi.org/10.36334/modsim2025.L02.pagliero |
https://mssanz.org.au/modsim2025/files/L02.pagliero.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
P |
| Rahman J (Joel) |
Towards a reference GLM-AED model for wetlands in Great Barrier Reef catchments |
Pagliero L, Legesse N, Hamilton D, Weber T, Nguyen H, Rahman J, Waltham N |
https://doi.org/10.36334/modsim2025.L02.pagliero |
https://mssanz.org.au/modsim2025/files/L02.pagliero.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
R |
| Waltham N |
Towards a reference GLM-AED model for wetlands in Great Barrier Reef catchments |
Pagliero L, Legesse N, Hamilton D, Weber T, Nguyen H, Rahman J, Waltham N |
https://doi.org/10.36334/modsim2025.L02.pagliero |
https://mssanz.org.au/modsim2025/files/L02.pagliero.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
W |
| Weber T |
Towards a reference GLM-AED model for wetlands in Great Barrier Reef catchments |
Pagliero L, Legesse N, Hamilton D, Weber T, Nguyen H, Rahman J, Waltham N |
https://doi.org/10.36334/modsim2025.L02.pagliero |
https://mssanz.org.au/modsim2025/files/L02.pagliero.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
W |
| Abellan E |
Towards a sustainable workflow for post-processing development and evaluation |
Owen B, Abellan E, Johnson R, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owenb |
https://mssanz.org.au/modsim2025/files/K02.owenb.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
A |
| Johnson R |
Towards a sustainable workflow for post-processing development and evaluation |
Owen B, Abellan E, Johnson R, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owenb |
https://mssanz.org.au/modsim2025/files/K02.owenb.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
J |
| Mentiplay D |
Towards a sustainable workflow for post-processing development and evaluation |
Owen B, Abellan E, Johnson R, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owenb |
https://mssanz.org.au/modsim2025/files/K02.owenb.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
M |
| Owen B |
Towards a sustainable workflow for post-processing development and evaluation |
Owen B, Abellan E, Johnson R, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owenb |
https://mssanz.org.au/modsim2025/files/K02.owenb.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
O |
| Trotta B |
Towards a sustainable workflow for post-processing development and evaluation |
Owen B, Abellan E, Johnson R, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owenb |
https://mssanz.org.au/modsim2025/files/K02.owenb.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
T |
| Whelan J |
Towards a sustainable workflow for post-processing development and evaluation |
Owen B, Abellan E, Johnson R, Mentiplay D, Trotta B, Whelan J |
https://doi.org/10.36334/modsim2025.K02.owenb |
https://mssanz.org.au/modsim2025/files/K02.owenb.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
W |
| Borevitz J |
Towards generalizable crop models: an eco-evolutionary optimality approach to carbon allocation |
Norton AJ, Borevitz J |
https://doi.org/10.36334/modsim2025.B02.norton |
https://mssanz.org.au/modsim2025/files/B02.norton.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
B |
| Norton AJ |
Towards generalizable crop models: an eco-evolutionary optimality approach to carbon allocation |
Norton AJ, Borevitz J |
https://doi.org/10.36334/modsim2025.B02.norton |
https://mssanz.org.au/modsim2025/files/B02.norton.pdf |
B |
Biological systems |
B2 |
APSIM-Development: Advances in Plant and Vegetation Modelling |
N |
| Batelaan O |
Towards rapid 3D soil moisture mapping with multiple on-the-go proximal sensors |
Zhang Z, Guan H, Veneklaas E, Singha K, Batelaan O |
https://doi.org/10.36334/modsim2025.F11.zhang |
https://mssanz.org.au/modsim2025/files/F11.zhang.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
B |
| Guan H |
Towards rapid 3D soil moisture mapping with multiple on-the-go proximal sensors |
Zhang Z, Guan H, Veneklaas E, Singha K, Batelaan O |
https://doi.org/10.36334/modsim2025.F11.zhang |
https://mssanz.org.au/modsim2025/files/F11.zhang.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
G |
| Singha K |
Towards rapid 3D soil moisture mapping with multiple on-the-go proximal sensors |
Zhang Z, Guan H, Veneklaas E, Singha K, Batelaan O |
https://doi.org/10.36334/modsim2025.F11.zhang |
https://mssanz.org.au/modsim2025/files/F11.zhang.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
S |
| Veneklaas E |
Towards rapid 3D soil moisture mapping with multiple on-the-go proximal sensors |
Zhang Z, Guan H, Veneklaas E, Singha K, Batelaan O |
https://doi.org/10.36334/modsim2025.F11.zhang |
https://mssanz.org.au/modsim2025/files/F11.zhang.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
V |
| Zhang Y |
Towards rapid 3D soil moisture mapping with multiple on-the-go proximal sensors |
Zhang Z, Guan H, Veneklaas E, Singha K, Batelaan O |
https://doi.org/10.36334/modsim2025.F11.zhang |
https://mssanz.org.au/modsim2025/files/F11.zhang.pdf |
F |
Environment and ecology |
F11 |
Agricultural Artificial Intelligence Modelling |
Z |
| Baker P |
Towards seamless provenance in collaborative modelling: Integrating Airflow with Provena |
Petridis R, Yu J, Baker P, Munnerley J, Mirza F |
https://doi.org/10.36334/modsim2025.C01.petridis |
https://mssanz.org.au/modsim2025/files/C01.petridis.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
B |
| Mirza F |
Towards seamless provenance in collaborative modelling: Integrating Airflow with Provena |
Petridis R, Yu J, Baker P, Munnerley J, Mirza F |
https://doi.org/10.36334/modsim2025.C01.petridis |
https://mssanz.org.au/modsim2025/files/C01.petridis.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
M |
| Munnerley J |
Towards seamless provenance in collaborative modelling: Integrating Airflow with Provena |
Petridis R, Yu J, Baker P, Munnerley J, Mirza F |
https://doi.org/10.36334/modsim2025.C01.petridis |
https://mssanz.org.au/modsim2025/files/C01.petridis.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
M |
| Petridis R |
Towards seamless provenance in collaborative modelling: Integrating Airflow with Provena |
Petridis R, Yu J, Baker P, Munnerley J, Mirza F |
https://doi.org/10.36334/modsim2025.C01.petridis |
https://mssanz.org.au/modsim2025/files/C01.petridis.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
P |
| Yu J |
Towards seamless provenance in collaborative modelling: Integrating Airflow with Provena |
Petridis R, Yu J, Baker P, Munnerley J, Mirza F |
https://doi.org/10.36334/modsim2025.C01.petridis |
https://mssanz.org.au/modsim2025/files/C01.petridis.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
Y |
| Green D |
Towards the generalised compression of weather data for technoeconomic optimisations |
Green D |
https://doi.org/10.36334/modsim2025.E03.green |
https://mssanz.org.au/modsim2025/files/E03.green.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
G |
| Bruce LC |
Tracking the cure: Finding the right numerical tool for bath treatment dispersion |
Gunaratne GL, Stones GL, Bruce LC |
https://doi.org/10.36334/modsim2025.F08.gunaratne |
https://mssanz.org.au/modsim2025/files/F08.gunaratne.pdf |
F |
Environment and ecology |
F8 |
GIS and environmental modelling |
B |
| Gunaratne GL |
Tracking the cure: Finding the right numerical tool for bath treatment dispersion |
Gunaratne GL, Stones GL, Bruce LC |
https://doi.org/10.36334/modsim2025.F08.gunaratne |
https://mssanz.org.au/modsim2025/files/F08.gunaratne.pdf |
F |
Environment and ecology |
F8 |
GIS and environmental modelling |
G |
| Stones GL |
Tracking the cure: Finding the right numerical tool for bath treatment dispersion |
Gunaratne GL, Stones GL, Bruce LC |
https://doi.org/10.36334/modsim2025.F08.gunaratne |
https://mssanz.org.au/modsim2025/files/F08.gunaratne.pdf |
F |
Environment and ecology |
F8 |
GIS and environmental modelling |
S |
| Arndt S |
Tracking the path of carbon through ecosystems: modelling vegetation carbon dynamics at Australian flux sites |
Inbar A, Williams L, Holzworth D, Knauer J, Stephens C, Arndt S, Griebel A, Hinko‑Najera N, Isaac P, Moore C, Pendall E, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.inbar |
https://mssanz.org.au/modsim2025/files/F12.inbar.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
A |
| Griebel A |
Tracking the path of carbon through ecosystems: modelling vegetation carbon dynamics at Australian flux sites |
Inbar A, Williams L, Holzworth D, Knauer J, Stephens C, Arndt S, Griebel A, Hinko‑Najera N, Isaac P, Moore C, Pendall E, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.inbar |
https://mssanz.org.au/modsim2025/files/F12.inbar.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
G |
| Hinko‑Najera N |
Tracking the path of carbon through ecosystems: modelling vegetation carbon dynamics at Australian flux sites |
Inbar A, Williams L, Holzworth D, Knauer J, Stephens C, Arndt S, Griebel A, Hinko‑Najera N, Isaac P, Moore C, Pendall E, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.inbar |
https://mssanz.org.au/modsim2025/files/F12.inbar.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
H |
| Holzworth D |
Tracking the path of carbon through ecosystems: modelling vegetation carbon dynamics at Australian flux sites |
Inbar A, Williams L, Holzworth D, Knauer J, Stephens C, Arndt S, Griebel A, Hinko‑Najera N, Isaac P, Moore C, Pendall E, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.inbar |
https://mssanz.org.au/modsim2025/files/F12.inbar.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
H |
| Inbar A |
Tracking the path of carbon through ecosystems: modelling vegetation carbon dynamics at Australian flux sites |
Inbar A, Williams L, Holzworth D, Knauer J, Stephens C, Arndt S, Griebel A, Hinko‑Najera N, Isaac P, Moore C, Pendall E, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.inbar |
https://mssanz.org.au/modsim2025/files/F12.inbar.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
I |
| Isaac P |
Tracking the path of carbon through ecosystems: modelling vegetation carbon dynamics at Australian flux sites |
Inbar A, Williams L, Holzworth D, Knauer J, Stephens C, Arndt S, Griebel A, Hinko‑Najera N, Isaac P, Moore C, Pendall E, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.inbar |
https://mssanz.org.au/modsim2025/files/F12.inbar.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
I |
| Knauer J |
Tracking the path of carbon through ecosystems: modelling vegetation carbon dynamics at Australian flux sites |
Inbar A, Williams L, Holzworth D, Knauer J, Stephens C, Arndt S, Griebel A, Hinko‑Najera N, Isaac P, Moore C, Pendall E, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.inbar |
https://mssanz.org.au/modsim2025/files/F12.inbar.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
K |
| Medlyn B |
Tracking the path of carbon through ecosystems: modelling vegetation carbon dynamics at Australian flux sites |
Inbar A, Williams L, Holzworth D, Knauer J, Stephens C, Arndt S, Griebel A, Hinko‑Najera N, Isaac P, Moore C, Pendall E, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.inbar |
https://mssanz.org.au/modsim2025/files/F12.inbar.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
M |
| Moore C |
Tracking the path of carbon through ecosystems: modelling vegetation carbon dynamics at Australian flux sites |
Inbar A, Williams L, Holzworth D, Knauer J, Stephens C, Arndt S, Griebel A, Hinko‑Najera N, Isaac P, Moore C, Pendall E, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.inbar |
https://mssanz.org.au/modsim2025/files/F12.inbar.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
M |
| Pendall E |
Tracking the path of carbon through ecosystems: modelling vegetation carbon dynamics at Australian flux sites |
Inbar A, Williams L, Holzworth D, Knauer J, Stephens C, Arndt S, Griebel A, Hinko‑Najera N, Isaac P, Moore C, Pendall E, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.inbar |
https://mssanz.org.au/modsim2025/files/F12.inbar.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
P |
| Stephens C |
Tracking the path of carbon through ecosystems: modelling vegetation carbon dynamics at Australian flux sites |
Inbar A, Williams L, Holzworth D, Knauer J, Stephens C, Arndt S, Griebel A, Hinko‑Najera N, Isaac P, Moore C, Pendall E, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.inbar |
https://mssanz.org.au/modsim2025/files/F12.inbar.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
S |
| Williams L |
Tracking the path of carbon through ecosystems: modelling vegetation carbon dynamics at Australian flux sites |
Inbar A, Williams L, Holzworth D, Knauer J, Stephens C, Arndt S, Griebel A, Hinko‑Najera N, Isaac P, Moore C, Pendall E, Medlyn B |
https://doi.org/10.36334/modsim2025.F12.inbar |
https://mssanz.org.au/modsim2025/files/F12.inbar.pdf |
F |
Environment and ecology |
F12 |
The Future of Vegetation: Advances in Modelling Plant Function and Distribution |
W |
| Bartkowski B |
Transforming agriculture under climate change: A coupled framework of process-based, optimization and agent-based models |
Kaim A, Bartkowski B, Gütschow M, Heiß I, Linde J |
https://doi.org/10.36334/modsim2025.F07.kaim |
https://mssanz.org.au/modsim2025/files/F07.kaim.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
B |
| Gütschow M |
Transforming agriculture under climate change: A coupled framework of process-based, optimization and agent-based models |
Kaim A, Bartkowski B, Gütschow M, Heiß I, Linde J |
https://doi.org/10.36334/modsim2025.F07.kaim |
https://mssanz.org.au/modsim2025/files/F07.kaim.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
G |
| Heiss I |
Transforming agriculture under climate change: A coupled framework of process-based, optimization and agent-based models |
Kaim A, Bartkowski B, Gütschow M, Heiß I, Linde J |
https://doi.org/10.36334/modsim2025.F07.kaim |
https://mssanz.org.au/modsim2025/files/F07.kaim.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
H |
| Kaim A |
Transforming agriculture under climate change: A coupled framework of process-based, optimization and agent-based models |
Kaim A, Bartkowski B, Gütschow M, Heiß I, Linde J |
https://doi.org/10.36334/modsim2025.F07.kaim |
https://mssanz.org.au/modsim2025/files/F07.kaim.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
K |
| Linde J |
Transforming agriculture under climate change: A coupled framework of process-based, optimization and agent-based models |
Kaim A, Bartkowski B, Gütschow M, Heiß I, Linde J |
https://doi.org/10.36334/modsim2025.F07.kaim |
https://mssanz.org.au/modsim2025/files/F07.kaim.pdf |
F |
Environment and ecology |
F7 |
Coupling Models for Agricultural Transformation and Climate Change Adaptation: Challenges, Opportunities, and Best Practices |
L |
| Bennett J |
Trends in hydrological forecast skill in a changing climate |
Bennett J, Robertson D, Shokri A |
https://doi.org/10.36334/modsim2025.K06.bennett |
https://mssanz.org.au/modsim2025/files/K06.bennett.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
B |
| Robertson D |
Trends in hydrological forecast skill in a changing climate |
Bennett J, Robertson D, Shokri A |
https://doi.org/10.36334/modsim2025.K06.bennett |
https://mssanz.org.au/modsim2025/files/K06.bennett.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
R |
| Shokri A |
Trends in hydrological forecast skill in a changing climate |
Bennett J, Robertson D, Shokri A |
https://doi.org/10.36334/modsim2025.K06.bennett |
https://mssanz.org.au/modsim2025/files/K06.bennett.pdf |
K |
Hydroclimate |
K6 |
Advancing hydroclimate forecasting: methods and applications |
S |
| Allingham D |
Turning cross-sectoral agricultural climate change modelling into actionable insights for industry and government |
Allingham D, Ellis B, Kelley J, Lawson J, Young R |
https://doi.org/10.36334/modsim2025.G03.allingham |
https://mssanz.org.au/modsim2025/files/G03.allingham.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
A |
| Ellis B |
Turning cross-sectoral agricultural climate change modelling into actionable insights for industry and government |
Allingham D, Ellis B, Kelley J, Lawson J, Young R |
https://doi.org/10.36334/modsim2025.G03.allingham |
https://mssanz.org.au/modsim2025/files/G03.allingham.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
E |
| Kelley J |
Turning cross-sectoral agricultural climate change modelling into actionable insights for industry and government |
Allingham D, Ellis B, Kelley J, Lawson J, Young R |
https://doi.org/10.36334/modsim2025.G03.allingham |
https://mssanz.org.au/modsim2025/files/G03.allingham.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
K |
| Lawson J |
Turning cross-sectoral agricultural climate change modelling into actionable insights for industry and government |
Allingham D, Ellis B, Kelley J, Lawson J, Young R |
https://doi.org/10.36334/modsim2025.G03.allingham |
https://mssanz.org.au/modsim2025/files/G03.allingham.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
L |
| Young R |
Turning cross-sectoral agricultural climate change modelling into actionable insights for industry and government |
Allingham D, Ellis B, Kelley J, Lawson J, Young R |
https://doi.org/10.36334/modsim2025.G03.allingham |
https://mssanz.org.au/modsim2025/files/G03.allingham.pdf |
G |
Global change and natural hazards |
G3 |
Climate risk assessment for government and industry: Bridging the gap between climate science and actionable insights for decision makers |
Y |
| de Groot A |
Two-dimensional hydrodynamic modelling of wetlands in non-urban catchments |
Nguyen H, Weber T, Egger F, de Groot A |
https://doi.org/10.36334/modsim2025.L02.nguyen |
https://mssanz.org.au/modsim2025/files/L02.nguyen.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
d |
| Egger F |
Two-dimensional hydrodynamic modelling of wetlands in non-urban catchments |
Nguyen H, Weber T, Egger F, de Groot A |
https://doi.org/10.36334/modsim2025.L02.nguyen |
https://mssanz.org.au/modsim2025/files/L02.nguyen.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
E |
| Nguyen H (Ha) |
Two-dimensional hydrodynamic modelling of wetlands in non-urban catchments |
Nguyen H, Weber T, Egger F, de Groot A |
https://doi.org/10.36334/modsim2025.L02.nguyen |
https://mssanz.org.au/modsim2025/files/L02.nguyen.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
N |
| Weber T |
Two-dimensional hydrodynamic modelling of wetlands in non-urban catchments |
Nguyen H, Weber T, Egger F, de Groot A |
https://doi.org/10.36334/modsim2025.L02.nguyen |
https://mssanz.org.au/modsim2025/files/L02.nguyen.pdf |
L |
Water quality |
L2 |
Advanced Lake, Reservoir, Wetland and River System Modelling |
W |
| Chen M (Min) |
Uncertainty assessment in water quality modelling: towards fulsome practices |
Jakeman T, Sun X, Croke B, Chen M |
https://doi.org/10.36334/modsim2025.J05.jakeman |
https://mssanz.org.au/modsim2025/files/J05.jakeman.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
C |
| Croke B |
Uncertainty assessment in water quality modelling: towards fulsome practices |
Jakeman T, Sun X, Croke B, Chen M |
https://doi.org/10.36334/modsim2025.J05.jakeman |
https://mssanz.org.au/modsim2025/files/J05.jakeman.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
C |
| Jakeman T |
Uncertainty assessment in water quality modelling: towards fulsome practices |
Jakeman T, Sun X, Croke B, Chen M |
https://doi.org/10.36334/modsim2025.J05.jakeman |
https://mssanz.org.au/modsim2025/files/J05.jakeman.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
J |
| Sun X |
Uncertainty assessment in water quality modelling: towards fulsome practices |
Jakeman T, Sun X, Croke B, Chen M |
https://doi.org/10.36334/modsim2025.J05.jakeman |
https://mssanz.org.au/modsim2025/files/J05.jakeman.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
S |
| Hughes JD |
Uncertainty estimation for river system models |
Kim SSH, Hughes JD, Lerat J, Regan‑Beasley D |
https://doi.org/10.36334/modsim2025.J02.kim |
https://mssanz.org.au/modsim2025/files/J02.kim.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
H |
| Kim SSH |
Uncertainty estimation for river system models |
Kim SSH, Hughes JD, Lerat J, Regan‑Beasley D |
https://doi.org/10.36334/modsim2025.J02.kim |
https://mssanz.org.au/modsim2025/files/J02.kim.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
K |
| Lerat J |
Uncertainty estimation for river system models |
Kim SSH, Hughes JD, Lerat J, Regan‑Beasley D |
https://doi.org/10.36334/modsim2025.J02.kim |
https://mssanz.org.au/modsim2025/files/J02.kim.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
L |
| Regan‑Beasley D |
Uncertainty estimation for river system models |
Kim SSH, Hughes JD, Lerat J, Regan‑Beasley D |
https://doi.org/10.36334/modsim2025.J02.kim |
https://mssanz.org.au/modsim2025/files/J02.kim.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
R |
| Dzator J |
Uncovering major barriers for not seeking mathematics assistance in the education industry: DEMATEL modelling approach |
Dzator M,Simelane P, Dzator J |
https://doi.org/10.36334/modsim2025.A06.dzator |
https://mssanz.org.au/modsim2025/files/A06.dzator.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
D |
| Simelane P |
Uncovering major barriers for not seeking mathematics assistance in the education industry: DEMATEL modelling approach |
Dzator M,Simelane P, Dzator J |
https://doi.org/10.36334/modsim2025.A06.dzator |
https://mssanz.org.au/modsim2025/files/A06.dzator.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
S |
| Dzator M |
Uncovering major barriers for not seeking mathematics assistance in the education industry: DEMATEL modelling approach |
Dzator M,Simelane P, Dzator J |
https://doi.org/10.36334/modsim2025.A06.dzator |
https://mssanz.org.au/modsim2025/files/A06.dzator.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
D |
| Attarzadeh S |
Understanding catchment hydrology approaches for flow estimation |
Singh J, Attarzadeh S |
https://doi.org/10.36334/modsim2025.G06.singh |
https://mssanz.org.au/modsim2025/files/G06.singh.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
A |
| Singh J |
Understanding catchment hydrology approaches for flow estimation |
Singh J, Attarzadeh S |
https://doi.org/10.36334/modsim2025.G06.singh |
https://mssanz.org.au/modsim2025/files/G06.singh.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
S |
| Lu Y |
Understanding structural change from transitioning to a low-carbon economy: an integrated multi-model approach for Australia |
Mariano MJM, Verikios G, Lu Y |
https://doi.org/10.36334/modsim2025.E03.mariano |
https://mssanz.org.au/modsim2025/files/E03.mariano.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
L |
| Mariano MJM |
Understanding structural change from transitioning to a low-carbon economy: an integrated multi-model approach for Australia |
Mariano MJM, Verikios G, Lu Y |
https://doi.org/10.36334/modsim2025.E03.mariano |
https://mssanz.org.au/modsim2025/files/E03.mariano.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
M |
| Verikios G |
Understanding structural change from transitioning to a low-carbon economy: an integrated multi-model approach for Australia |
Mariano MJM, Verikios G, Lu Y |
https://doi.org/10.36334/modsim2025.E03.mariano |
https://mssanz.org.au/modsim2025/files/E03.mariano.pdf |
E |
Energy, integrated infrastructure and urban planning |
E3 |
Economic modelling for a sustainable energy transition |
V |
| Brooks S |
Understanding the impacts of climate change through the lens of climate and ecological analogues |
Sengupta A, Brooks S, Doble R, Doody T, Gibbs M, Gao S, Pritchard J, Round V, O’Sullivan J |
https://doi.org/10.36334/modsim2025.K01.sengupta |
https://mssanz.org.au/modsim2025/files/K01.sengupta.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
B |
| Doble R |
Understanding the impacts of climate change through the lens of climate and ecological analogues |
Sengupta A, Brooks S, Doble R, Doody T, Gibbs M, Gao S, Pritchard J, Round V, O’Sullivan J |
https://doi.org/10.36334/modsim2025.K01.sengupta |
https://mssanz.org.au/modsim2025/files/K01.sengupta.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
D |
| Doody T |
Understanding the impacts of climate change through the lens of climate and ecological analogues |
Sengupta A, Brooks S, Doble R, Doody T, Gibbs M, Gao S, Pritchard J, Round V, O’Sullivan J |
https://doi.org/10.36334/modsim2025.K01.sengupta |
https://mssanz.org.au/modsim2025/files/K01.sengupta.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
D |
| Gao S (Sicong) |
Understanding the impacts of climate change through the lens of climate and ecological analogues |
Sengupta A, Brooks S, Doble R, Doody T, Gibbs M, Gao S, Pritchard J, Round V, O’Sullivan J |
https://doi.org/10.36334/modsim2025.K01.sengupta |
https://mssanz.org.au/modsim2025/files/K01.sengupta.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
G |
| Gibbs MS |
Understanding the impacts of climate change through the lens of climate and ecological analogues |
Sengupta A, Brooks S, Doble R, Doody T, Gibbs M, Gao S, Pritchard J, Round V, O’Sullivan J |
https://doi.org/10.36334/modsim2025.K01.sengupta |
https://mssanz.org.au/modsim2025/files/K01.sengupta.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
G |
| O’Sullivan J |
Understanding the impacts of climate change through the lens of climate and ecological analogues |
Sengupta A, Brooks S, Doble R, Doody T, Gibbs M, Gao S, Pritchard J, Round V, O’Sullivan J |
https://doi.org/10.36334/modsim2025.K01.sengupta |
https://mssanz.org.au/modsim2025/files/K01.sengupta.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
O |
| Pritchard J |
Understanding the impacts of climate change through the lens of climate and ecological analogues |
Sengupta A, Brooks S, Doble R, Doody T, Gibbs M, Gao S, Pritchard J, Round V, O’Sullivan J |
https://doi.org/10.36334/modsim2025.K01.sengupta |
https://mssanz.org.au/modsim2025/files/K01.sengupta.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
P |
| Round V |
Understanding the impacts of climate change through the lens of climate and ecological analogues |
Sengupta A, Brooks S, Doble R, Doody T, Gibbs M, Gao S, Pritchard J, Round V, O’Sullivan J |
https://doi.org/10.36334/modsim2025.K01.sengupta |
https://mssanz.org.au/modsim2025/files/K01.sengupta.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
R |
| Sengupta A |
Understanding the impacts of climate change through the lens of climate and ecological analogues |
Sengupta A, Brooks S, Doble R, Doody T, Gibbs M, Gao S, Pritchard J, Round V, O’Sullivan J |
https://doi.org/10.36334/modsim2025.K01.sengupta |
https://mssanz.org.au/modsim2025/files/K01.sengupta.pdf |
K |
Hydroclimate |
K1 |
Modelling Complexity: New Approaches for Water, Environment and Society in Large Basins |
S |
| Farrell M |
Unpacking soil carbon stabilization: From measurement to modelling |
Liu J, Farrell M, Weng H, Pasut C |
https://doi.org/10.36334/modsim2025.F13.liu |
https://mssanz.org.au/modsim2025/files/F13.liu.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
F |
| Liu J (Jingjing) |
Unpacking soil carbon stabilization: From measurement to modelling |
Liu J, Farrell M, Weng H, Pasut C |
https://doi.org/10.36334/modsim2025.F13.liu |
https://mssanz.org.au/modsim2025/files/F13.liu.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
L |
| Pasut C |
Unpacking soil carbon stabilization: From measurement to modelling |
Liu J, Farrell M, Weng H, Pasut C |
https://doi.org/10.36334/modsim2025.F13.liu |
https://mssanz.org.au/modsim2025/files/F13.liu.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
P |
| Weng H |
Unpacking soil carbon stabilization: From measurement to modelling |
Liu J, Farrell M, Weng H, Pasut C |
https://doi.org/10.36334/modsim2025.F13.liu |
https://mssanz.org.au/modsim2025/files/F13.liu.pdf |
F |
Environment and ecology |
F13 |
Reimagining Croplands: Modeling Carbon Storage and Biodiversity Benefits |
W |
| Bai H (Huiqing) |
Unraveling varietal resilience: integrating APSIM and RF to assess wheat yield responses to extreme temperatures |
Bai H, Chen X, Li Y, Yang F, Yang X, Chen D, Han R, Liu E, Liu B, Li G |
https://doi.org/10.36334/modsim2025.B08.bai |
https://mssanz.org.au/modsim2025/files/B08.bai.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
B |
| Chen D (Di) |
Unraveling varietal resilience: integrating APSIM and RF to assess wheat yield responses to extreme temperatures |
Bai H, Chen X, Li Y, Yang F, Yang X, Chen D, Han R, Liu E, Liu B, Li G |
https://doi.org/10.36334/modsim2025.B08.bai |
https://mssanz.org.au/modsim2025/files/B08.bai.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
C |
| Chen X (Xianguan) |
Unraveling varietal resilience: integrating APSIM and RF to assess wheat yield responses to extreme temperatures |
Bai H, Chen X, Li Y, Yang F, Yang X, Chen D, Han R, Liu E, Liu B, Li G |
https://doi.org/10.36334/modsim2025.B08.bai |
https://mssanz.org.au/modsim2025/files/B08.bai.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
C |
| Han R (Rui) |
Unraveling varietal resilience: integrating APSIM and RF to assess wheat yield responses to extreme temperatures |
Bai H, Chen X, Li Y, Yang F, Yang X, Chen D, Han R, Liu E, Liu B, Li G |
https://doi.org/10.36334/modsim2025.B08.bai |
https://mssanz.org.au/modsim2025/files/B08.bai.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
H |
| Li G (Guoqiang) |
Unraveling varietal resilience: integrating APSIM and RF to assess wheat yield responses to extreme temperatures |
Bai H, Chen X, Li Y, Yang F, Yang X, Chen D, Han R, Liu E, Liu B, Li G |
https://doi.org/10.36334/modsim2025.B08.bai |
https://mssanz.org.au/modsim2025/files/B08.bai.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
L |
| Li Y (Yang) |
Unraveling varietal resilience: integrating APSIM and RF to assess wheat yield responses to extreme temperatures |
Bai H, Chen X, Li Y, Yang F, Yang X, Chen D, Han R, Liu E, Liu B, Li G |
https://doi.org/10.36334/modsim2025.B08.bai |
https://mssanz.org.au/modsim2025/files/B08.bai.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
L |
| Liu B (Buchun) |
Unraveling varietal resilience: integrating APSIM and RF to assess wheat yield responses to extreme temperatures |
Bai H, Chen X, Li Y, Yang F, Yang X, Chen D, Han R, Liu E, Liu B, Li G |
https://doi.org/10.36334/modsim2025.B08.bai |
https://mssanz.org.au/modsim2025/files/B08.bai.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
L |
| Liu E (Enke) |
Unraveling varietal resilience: integrating APSIM and RF to assess wheat yield responses to extreme temperatures |
Bai H, Chen X, Li Y, Yang F, Yang X, Chen D, Han R, Liu E, Liu B, Li G |
https://doi.org/10.36334/modsim2025.B08.bai |
https://mssanz.org.au/modsim2025/files/B08.bai.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
L |
| Yang F (Fan) |
Unraveling varietal resilience: integrating APSIM and RF to assess wheat yield responses to extreme temperatures |
Bai H, Chen X, Li Y, Yang F, Yang X, Chen D, Han R, Liu E, Liu B, Li G |
https://doi.org/10.36334/modsim2025.B08.bai |
https://mssanz.org.au/modsim2025/files/B08.bai.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
Y |
| Yang X (Xiaojuan) |
Unraveling varietal resilience: integrating APSIM and RF to assess wheat yield responses to extreme temperatures |
Bai H, Chen X, Li Y, Yang F, Yang X, Chen D, Han R, Liu E, Liu B, Li G |
https://doi.org/10.36334/modsim2025.B08.bai |
https://mssanz.org.au/modsim2025/files/B08.bai.pdf |
B |
Biological systems |
B8 |
Innovative Modelling Approaches for Agricultural Systems Sustainability under Climate Change |
Y |
| Cheng X (Xiang) |
Updated climate inputs for rainfall-runoff modelling in northern Victoria |
Cheng X, Szabo K, Finger MJ |
https://doi.org/10.36334/modsim2025.J02.cheng |
https://mssanz.org.au/modsim2025/files/J02.cheng.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
C |
| Finger MJ |
Updated climate inputs for rainfall-runoff modelling in northern Victoria |
Cheng X, Szabo K, Finger MJ |
https://doi.org/10.36334/modsim2025.J02.cheng |
https://mssanz.org.au/modsim2025/files/J02.cheng.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
F |
| Szabo K |
Updated climate inputs for rainfall-runoff modelling in northern Victoria |
Cheng X, Szabo K, Finger MJ |
https://doi.org/10.36334/modsim2025.J02.cheng |
https://mssanz.org.au/modsim2025/files/J02.cheng.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
S |
| Dutta D |
Urban demand models for the Fish River-Wywandy System |
Trim A, Podger GM, Dutta D |
https://doi.org/10.36334/modsim2025.J02.trim |
https://mssanz.org.au/modsim2025/files/J02.trim.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
D |
| Podger GM |
Urban demand models for the Fish River-Wywandy System |
Trim A, Podger GM, Dutta D |
https://doi.org/10.36334/modsim2025.J02.trim |
https://mssanz.org.au/modsim2025/files/J02.trim.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
P |
| Trim A |
Urban demand models for the Fish River-Wywandy System |
Trim A, Podger GM, Dutta D |
https://doi.org/10.36334/modsim2025.J02.trim |
https://mssanz.org.au/modsim2025/files/J02.trim.pdf |
J |
Water resources |
J2 |
River System Modelling for Water Resources Management: Advances and Challenges |
T |
| Andualem TG |
Urbanisation and climate variability driving hydrological and geomorphological changes: Implications for flood risk (INVITED SPEAKER) |
Andualem TG, Hewa GA, Peters S, Myers BR, Boland J |
https://doi.org/10.36334/modsim2025.G06.andualem |
https://mssanz.org.au/modsim2025/files/G06.andualem.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
A |
| Boland J |
Urbanisation and climate variability driving hydrological and geomorphological changes: Implications for flood risk (INVITED SPEAKER) |
Andualem TG, Hewa GA, Peters S, Myers BR, Boland J |
https://doi.org/10.36334/modsim2025.G06.andualem |
https://mssanz.org.au/modsim2025/files/G06.andualem.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
B |
| Hewa GA |
Urbanisation and climate variability driving hydrological and geomorphological changes: Implications for flood risk (INVITED SPEAKER) |
Andualem TG, Hewa GA, Peters S, Myers BR, Boland J |
https://doi.org/10.36334/modsim2025.G06.andualem |
https://mssanz.org.au/modsim2025/files/G06.andualem.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
H |
| Myers BR |
Urbanisation and climate variability driving hydrological and geomorphological changes: Implications for flood risk (INVITED SPEAKER) |
Andualem TG, Hewa GA, Peters S, Myers BR, Boland J |
https://doi.org/10.36334/modsim2025.G06.andualem |
https://mssanz.org.au/modsim2025/files/G06.andualem.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
M |
| Peters S |
Urbanisation and climate variability driving hydrological and geomorphological changes: Implications for flood risk (INVITED SPEAKER) |
Andualem TG, Hewa GA, Peters S, Myers BR, Boland J |
https://doi.org/10.36334/modsim2025.G06.andualem |
https://mssanz.org.au/modsim2025/files/G06.andualem.pdf |
G |
Global change and natural hazards |
G6 |
Urbanization, Hydro-Meteorological Hazards, and Risk Mitigation |
P |
| Cichota R |
Use of mass balance to test and improve system models: Case study with APSIM |
Sharp J, Cichota R |
https://doi.org/10.36334/modsim2025.B03.sharp |
https://mssanz.org.au/modsim2025/files/B03.sharp.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
C |
| Sharp J |
Use of mass balance to test and improve system models: Case study with APSIM |
Sharp J, Cichota R |
https://doi.org/10.36334/modsim2025.B03.sharp |
https://mssanz.org.au/modsim2025/files/B03.sharp.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
S |
| Horne A |
Using both top-down and bottom-up approaches to assess environmental outcomes under climate change – a case study |
Traill L, Lang S, John A, Horne A |
https://doi.org/10.36334/modsim2025.J05.traill |
https://mssanz.org.au/modsim2025/files/J05.traill.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
H |
| John A |
Using both top-down and bottom-up approaches to assess environmental outcomes under climate change – a case study |
Traill L, Lang S, John A, Horne A |
https://doi.org/10.36334/modsim2025.J05.traill |
https://mssanz.org.au/modsim2025/files/J05.traill.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
J |
| Lang S |
Using both top-down and bottom-up approaches to assess environmental outcomes under climate change – a case study |
Traill L, Lang S, John A, Horne A |
https://doi.org/10.36334/modsim2025.J05.traill |
https://mssanz.org.au/modsim2025/files/J05.traill.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
L |
| Traill L |
Using both top-down and bottom-up approaches to assess environmental outcomes under climate change – a case study |
Traill L, Lang S, John A, Horne A |
https://doi.org/10.36334/modsim2025.J05.traill |
https://mssanz.org.au/modsim2025/files/J05.traill.pdf |
J |
Water resources |
J5 |
Fit for purpose modelling for water resources management |
T |
| Hughes JD |
Using energy balance functions to constrain future climate runoff trajectories |
Hughes JD, Petheram C, Yang A |
https://doi.org/10.36334/modsim2025.A02.hughes |
https://mssanz.org.au/modsim2025/files/A02.hughes.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
H |
| Petheram C |
Using energy balance functions to constrain future climate runoff trajectories |
Hughes JD, Petheram C, Yang A |
https://doi.org/10.36334/modsim2025.A02.hughes |
https://mssanz.org.au/modsim2025/files/A02.hughes.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
P |
| Yang A |
Using energy balance functions to constrain future climate runoff trajectories |
Hughes JD, Petheram C, Yang A |
https://doi.org/10.36334/modsim2025.A02.hughes |
https://mssanz.org.au/modsim2025/files/A02.hughes.pdf |
A |
Applied and computational mathematics |
A2 |
Advances in Numerical Solutions for Water Resources Models |
Y |
| Jeanneau A |
Using foresight and modelling to stress-test risk reduction options under various climate and socio-economic scenarios |
van Delden F, Smith P, Jones R |
https://doi.org/10.36334/modsim2025.F05.vandelden |
https://mssanz.org.au/modsim2025/files/F05.vandelden.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
J |
| Maier HR |
Using foresight and modelling to stress-test risk reduction options under various climate and socio-economic scenarios |
van Delden H, Vanhout R, Jeanneau A, Maier HR, Zecchin AC, McNaught T |
https://doi.org/10.36334/modsim2025.F05.vandelden |
https://mssanz.org.au/modsim2025/files/F05.vandelden.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
M |
| McNaught T |
Using foresight and modelling to stress-test risk reduction options under various climate and socio-economic scenarios |
van Delden H, Vanhout R, Jeanneau A, Maier HR, Zecchin AC, McNaught T |
https://doi.org/10.36334/modsim2025.F05.vandelden |
https://mssanz.org.au/modsim2025/files/F05.vandelden.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
M |
| van Delden H |
Using foresight and modelling to stress-test risk reduction options under various climate and socio-economic scenarios |
van Delden F, Smith P, Jones R |
https://doi.org/10.36334/modsim2025.F05.vandelden |
https://mssanz.org.au/modsim2025/files/F05.vandelden.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
v |
| Vanhout R |
Using foresight and modelling to stress-test risk reduction options under various climate and socio-economic scenarios |
van Delden F, Smith P, Jones R |
https://doi.org/10.36334/modsim2025.F05.vandelden |
https://mssanz.org.au/modsim2025/files/F05.vandelden.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
V |
| Zecchin AC |
Using foresight and modelling to stress-test risk reduction options under various climate and socio-economic scenarios |
van Delden H, Vanhout R, Jeanneau A, Maier HR, Zecchin AC, McNaught T |
https://doi.org/10.36334/modsim2025.F05.vandelden |
https://mssanz.org.au/modsim2025/files/F05.vandelden.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
Z |
| Lemiale V |
Using machine learning to emulate physics-inspired agent-based models: a case study in emergency evacuations |
Smith D, Lemiale V, Singh D, Rahman A, Pagendam D |
https://doi.org/10.36334/modsim2025.C06.smith |
https://mssanz.org.au/modsim2025/files/C06.smith.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
L |
| Pagendam D |
Using machine learning to emulate physics-inspired agent-based models: a case study in emergency evacuations |
Smith D, Lemiale V, Singh D, Rahman A, Pagendam D |
https://doi.org/10.36334/modsim2025.C06.smith |
https://mssanz.org.au/modsim2025/files/C06.smith.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
P |
| Rahman A |
Using machine learning to emulate physics-inspired agent-based models: a case study in emergency evacuations |
Smith D, Lemiale V, Singh D, Rahman A, Pagendam D |
https://doi.org/10.36334/modsim2025.C06.smith |
https://mssanz.org.au/modsim2025/files/C06.smith.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
R |
| Singh D |
Using machine learning to emulate physics-inspired agent-based models: a case study in emergency evacuations |
Smith D, Lemiale V, Singh D, Rahman A, Pagendam D |
https://doi.org/10.36334/modsim2025.C06.smith |
https://mssanz.org.au/modsim2025/files/C06.smith.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
S |
| Smith D |
Using machine learning to emulate physics-inspired agent-based models: a case study in emergency evacuations |
Smith D, Lemiale V, Singh D, Rahman A, Pagendam D |
https://doi.org/10.36334/modsim2025.C06.smith |
https://mssanz.org.au/modsim2025/files/C06.smith.pdf |
C |
Computer science and engineering |
C6 |
Emulation of Dynamic Models |
S |
| Dennis G |
Using markerless motion capture to identify unsuitable static body postures during work activities |
Harrison SM, Dennis G, Garcia-Flores R, Smith D, Kandanaarachchi S, Rahman A |
https://doi.org/10.36334/modsim2025.M03.harrison |
https://mssanz.org.au/modsim2025/files/M03.harrison.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
D |
| Garcia-Flores R |
Using markerless motion capture to identify unsuitable static body postures during work activities |
Harrison SM, Dennis G, Garcia-Flores R, Smith D, Kandanaarachchi S, Rahman A |
https://doi.org/10.36334/modsim2025.M03.harrison |
https://mssanz.org.au/modsim2025/files/M03.harrison.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
G |
| Harrison SM |
Using markerless motion capture to identify unsuitable static body postures during work activities |
Harrison SM, Dennis G, Garcia-Flores R, Smith D, Kandanaarachchi S, Rahman A |
https://doi.org/10.36334/modsim2025.M03.harrison |
https://mssanz.org.au/modsim2025/files/M03.harrison.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
H |
| Kandanaarachchi S |
Using markerless motion capture to identify unsuitable static body postures during work activities |
Harrison SM, Dennis G, Garcia-Flores R, Smith D, Kandanaarachchi S, Rahman A |
https://doi.org/10.36334/modsim2025.M03.harrison |
https://mssanz.org.au/modsim2025/files/M03.harrison.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
K |
| Rahman A |
Using markerless motion capture to identify unsuitable static body postures during work activities |
Harrison SM, Dennis G, Garcia-Flores R, Smith D, Kandanaarachchi S, Rahman A |
https://doi.org/10.36334/modsim2025.M03.harrison |
https://mssanz.org.au/modsim2025/files/M03.harrison.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
R |
| Smith D |
Using markerless motion capture to identify unsuitable static body postures during work activities |
Harrison SM, Dennis G, Garcia-Flores R, Smith D, Kandanaarachchi S, Rahman A |
https://doi.org/10.36334/modsim2025.M03.harrison |
https://mssanz.org.au/modsim2025/files/M03.harrison.pdf |
M |
Operations Research |
M3 |
AI for Optimization: Methodologies and Applications |
S |
| Gelsinari S |
Using models and high resolution monitoring to estimate recharge in south-west Western Australia |
Hall J, Silberstein R, Gelsinari S |
https://doi.org/10.36334/modsim2025.J01.hall |
https://mssanz.org.au/modsim2025/files/J01.hall.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
G |
| Hall J (Joel) |
Using models and high resolution monitoring to estimate recharge in south-west Western Australia |
Hall J, Silberstein R, Gelsinari S |
https://doi.org/10.36334/modsim2025.J01.hall |
https://mssanz.org.au/modsim2025/files/J01.hall.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
H |
| Silberstein R |
Using models and high resolution monitoring to estimate recharge in south-west Western Australia |
Hall J, Silberstein R, Gelsinari S |
https://doi.org/10.36334/modsim2025.J01.hall |
https://mssanz.org.au/modsim2025/files/J01.hall.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
S |
| Lintern A |
Using rainfall characteristics to evaluate sizing of rainwater tanks under climate change |
Manuelpillai DP, Winfrey B, Lintern A |
https://doi.org/10.36334/modsim2025.L03.manuelpillai |
https://mssanz.org.au/modsim2025/files/L03.manuelpillai.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
L |
| Manuelpillai DP |
Using rainfall characteristics to evaluate sizing of rainwater tanks under climate change |
Manuelpillai DP, Winfrey B, Lintern A |
https://doi.org/10.36334/modsim2025.L03.manuelpillai |
https://mssanz.org.au/modsim2025/files/L03.manuelpillai.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
M |
| Winfrey B |
Using rainfall characteristics to evaluate sizing of rainwater tanks under climate change |
Manuelpillai DP, Winfrey B, Lintern A |
https://doi.org/10.36334/modsim2025.L03.manuelpillai |
https://mssanz.org.au/modsim2025/files/L03.manuelpillai.pdf |
L |
Water quality |
L3 |
Modelling water quality treatment and management |
W |
| Bolger M |
Using Workspace to Explore Large Point Cloud Datasets |
Hetherton L, Bolger M, Cleary PW, Thomas D, Watkins D |
https://doi.org/10.36334/modsim2025.C01.hetherton |
https://mssanz.org.au/modsim2025/files/C01.hetherton.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
B |
| Cleary PW |
Using Workspace to Explore Large Point Cloud Datasets |
Hetherton L, Bolger M, Cleary PW, Thomas D, Watkins D |
https://doi.org/10.36334/modsim2025.C01.hetherton |
https://mssanz.org.au/modsim2025/files/C01.hetherton.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
C |
| Hetherton L |
Using Workspace to Explore Large Point Cloud Datasets |
Hetherton L, Bolger M, Cleary PW, Thomas D, Watkins D |
https://doi.org/10.36334/modsim2025.C01.hetherton |
https://mssanz.org.au/modsim2025/files/C01.hetherton.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
H |
| Thomas D (David) |
Using Workspace to Explore Large Point Cloud Datasets |
Hetherton L, Bolger M, Cleary PW, Thomas D, Watkins D |
https://doi.org/10.36334/modsim2025.C01.hetherton |
https://mssanz.org.au/modsim2025/files/C01.hetherton.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
T |
| Watkins D |
Using Workspace to Explore Large Point Cloud Datasets |
Hetherton L, Bolger M, Cleary PW, Thomas D, Watkins D |
https://doi.org/10.36334/modsim2025.C01.hetherton |
https://mssanz.org.au/modsim2025/files/C01.hetherton.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
W |
| Abram N |
Utilising CORDEX projections to assess runoff changes in Victoria |
Devanand G, Abram N, Pitman A |
https://doi.org/10.36334/modsim2025.G04.devanand |
https://mssanz.org.au/modsim2025/files/G04.devanand.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
A |
| Devanand G |
Utilising CORDEX projections to assess runoff changes in Victoria |
Devanand G, Abram N, Pitman A |
https://doi.org/10.36334/modsim2025.G04.devanand |
https://mssanz.org.au/modsim2025/files/G04.devanand.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
D |
| Pitman A |
Utilising CORDEX projections to assess runoff changes in Victoria |
Devanand G, Abram N, Pitman A |
https://doi.org/10.36334/modsim2025.G04.devanand |
https://mssanz.org.au/modsim2025/files/G04.devanand.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
P |
| Cresswell A |
Utilising satellite-derived maps to partition coral reefs into meaningful spatial units |
Haller-Bull V, Cresswell A, Gonzalez-Rivero M, Ortiz J |
https://doi.org/10.36334/modsim2025.F05.hallerbull |
https://mssanz.org.au/modsim2025/files/F05.hallerbull.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
C |
| Gonzalez-Rivero M |
Utilising satellite-derived maps to partition coral reefs into meaningful spatial units |
Haller-Bull V, Cresswell A, Gonzalez-Rivero M, Ortiz J |
https://doi.org/10.36334/modsim2025.F05.hallerbull |
https://mssanz.org.au/modsim2025/files/F05.hallerbull.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
G |
| Haller-Bull V |
Utilising satellite-derived maps to partition coral reefs into meaningful spatial units |
Haller-Bull V, Cresswell A, Gonzalez-Rivero M, Ortiz J |
https://doi.org/10.36334/modsim2025.F05.hallerbull |
https://mssanz.org.au/modsim2025/files/F05.hallerbull.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
H |
| Ortiz J |
Utilising satellite-derived maps to partition coral reefs into meaningful spatial units |
Haller-Bull V, Cresswell A, Gonzalez-Rivero M, Ortiz J |
https://doi.org/10.36334/modsim2025.F05.hallerbull |
https://mssanz.org.au/modsim2025/files/F05.hallerbull.pdf |
F |
Environment and ecology |
F5 |
Advancing decision support: Decision tools for building robust and resilient futures |
O |
| Kirkegaard JA |
Validated simulation of a long-term experiment reveals a pathway for improved crop productivity |
Lilley JM, Kirkegaard JA |
https://doi.org/10.36334/modsim2025.B03.lilley |
https://mssanz.org.au/modsim2025/files/B03.lilley.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
K |
| Lilley JM |
Validated simulation of a long-term experiment reveals a pathway for improved crop productivity |
Lilley JM, Kirkegaard JA |
https://doi.org/10.36334/modsim2025.B03.lilley |
https://mssanz.org.au/modsim2025/files/B03.lilley.pdf |
B |
Biological systems |
B3 |
APSIM Developments: Soil modelling capability (water, nutrients, temperature, climatic inputs) |
L |
| Leahy MJ |
Validation of a numerical model of a ship and cable-towed body system |
Leahy MJ, Logan S, Sgarioto D |
https://doi.org/10.36334/modsim2025.A06.leahy |
https://mssanz.org.au/modsim2025/files/A06.leahy.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
L |
| Logan S |
Validation of a numerical model of a ship and cable-towed body system |
Leahy MJ, Logan S, Sgarioto D |
https://doi.org/10.36334/modsim2025.A06.leahy |
https://mssanz.org.au/modsim2025/files/A06.leahy.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
L |
| Sgarioto D |
Validation of a numerical model of a ship and cable-towed body system |
Leahy MJ, Logan S, Sgarioto D |
https://doi.org/10.36334/modsim2025.A06.leahy |
https://mssanz.org.au/modsim2025/files/A06.leahy.pdf |
A |
Applied and computational mathematics |
A6 |
Industrial mathematical modelling and simulation |
S |
| Schaerf TM |
Vision and body as drivers of topological interactions in collective motion |
Zvezdin AV, Welch MC, Schaerf TM |
https://doi.org/10.36334/modsim2025.B09.zvezdin |
https://mssanz.org.au/modsim2025/files/B09.zvezdin.pdf |
B |
Biological systems |
B9 |
Advances in agent-based modelling and their statistical challenges in biological, ecological and agricultural systems |
S |
| Welch MC |
Vision and body as drivers of topological interactions in collective motion |
Zvezdin AV, Welch MC, Schaerf TM |
https://doi.org/10.36334/modsim2025.B09.zvezdin |
https://mssanz.org.au/modsim2025/files/B09.zvezdin.pdf |
B |
Biological systems |
B9 |
Advances in agent-based modelling and their statistical challenges in biological, ecological and agricultural systems |
W |
| Zvezdin AV |
Vision and body as drivers of topological interactions in collective motion |
Zvezdin AV, Welch MC, Schaerf TM |
https://doi.org/10.36334/modsim2025.B09.zvezdin |
https://mssanz.org.au/modsim2025/files/B09.zvezdin.pdf |
B |
Biological systems |
B9 |
Advances in agent-based modelling and their statistical challenges in biological, ecological and agricultural systems |
Z |
| Taggart RJ |
Warnings based on risk matrices: a coherent framework with consistent evaluation |
Taggart RJ, Wilke D |
https://doi.org/10.36334/modsim2025.K02.taggart |
https://mssanz.org.au/modsim2025/files/K02.taggart.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
T |
| Wilke D |
Warnings based on risk matrices: a coherent framework with consistent evaluation |
Taggart RJ, Wilke D |
https://doi.org/10.36334/modsim2025.K02.taggart |
https://mssanz.org.au/modsim2025/files/K02.taggart.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
W |
| Ashbolt SC |
Water resources modelling in Melbourne: Current status and future directions |
Kularathna MDU, Ashbolt SC, Vu K |
https://doi.org/10.36334/modsim2025.J04.kularathnam |
https://mssanz.org.au/modsim2025/files/J04.kularathnam.pdf |
J |
Water resources |
J4 |
Responding to the Challenges and Complexities of Urban Water Management |
A |
| Kularathna MDU |
Water resources modelling in Melbourne: Current status and future directions |
Kularathna MDU, Ashbolt SC, Vu K |
https://doi.org/10.36334/modsim2025.J04.kularathnam |
https://mssanz.org.au/modsim2025/files/J04.kularathnam.pdf |
J |
Water resources |
J4 |
Responding to the Challenges and Complexities of Urban Water Management |
K |
| Vu K |
Water resources modelling in Melbourne: Current status and future directions |
Kularathna MDU, Ashbolt SC, Vu K |
https://doi.org/10.36334/modsim2025.J04.kularathnam |
https://mssanz.org.au/modsim2025/files/J04.kularathnam.pdf |
J |
Water resources |
J4 |
Responding to the Challenges and Complexities of Urban Water Management |
V |
| Egger F |
What’s the point of education in the age of AI? |
O’Brien KR, Egger F, Maier HR, Elsawah S, Gibbes B |
https://doi.org/10.36334/modsim2025.I04.obrien |
https://mssanz.org.au/modsim2025/files/I04.obrien.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
E |
| Elsawah S |
What’s the point of education in the age of AI? |
O’Brien KR, Egger F, Maier HR, Elsawah S, Gibbes B |
https://doi.org/10.36334/modsim2025.I04.obrien |
https://mssanz.org.au/modsim2025/files/I04.obrien.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
E |
| Gibbes B |
What’s the point of education in the age of AI? |
O’Brien KR, Egger F, Maier HR, Elsawah S, Gibbes B |
https://doi.org/10.36334/modsim2025.I04.obrien |
https://mssanz.org.au/modsim2025/files/I04.obrien.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
G |
| Maier HR |
What’s the point of education in the age of AI? |
O’Brien KR, Egger F, Maier HR, Elsawah S, Gibbes B |
https://doi.org/10.36334/modsim2025.I04.obrien |
https://mssanz.org.au/modsim2025/files/I04.obrien.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
M |
| O’Brien KR |
What’s the point of education in the age of AI? |
O’Brien KR, Egger F, Maier HR, Elsawah S, Gibbes B |
https://doi.org/10.36334/modsim2025.I04.obrien |
https://mssanz.org.au/modsim2025/files/I04.obrien.pdf |
I |
Participatory decision-making, socioecological systems, and education |
I4 |
Training future modellers for an uncertain future |
O |
| Sowden M |
When dust meets cloud: overcoming satellite monitoring gaps in high-impact pollution events across Australasia |
Sowden M |
https://doi.org/10.36334/modsim2025.G07.sowdenm |
https://mssanz.org.au/modsim2025/files/G07.sowdenm.pdf |
G |
Global change and natural hazards |
G7 |
Tackling the challenges associated with modelling increases in landscape fire effects on human and ecosystem health under climate change conditions |
S |
| Higgins A |
When floods disrupt freight: modelling supply chain risks under future climates |
Tong M, Higgins A, McFallan S, Islam Z, Marquez L |
https://doi.org/10.36334/modsim2025.G04.tong |
https://mssanz.org.au/modsim2025/files/G04.tong.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
H |
| Islam Z |
When floods disrupt freight: modelling supply chain risks under future climates |
Tong M, Higgins A, McFallan S, Islam Z, Marquez L |
https://doi.org/10.36334/modsim2025.G04.tong |
https://mssanz.org.au/modsim2025/files/G04.tong.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
I |
| Marquez L |
When floods disrupt freight: modelling supply chain risks under future climates |
Tong M, Higgins A, McFallan S, Islam Z, Marquez L |
https://doi.org/10.36334/modsim2025.G04.tong |
https://mssanz.org.au/modsim2025/files/G04.tong.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
M |
| McFallan S |
When floods disrupt freight: modelling supply chain risks under future climates |
Tong M, Higgins A, McFallan S, Islam Z, Marquez L |
https://doi.org/10.36334/modsim2025.G04.tong |
https://mssanz.org.au/modsim2025/files/G04.tong.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
M |
| Tong M |
When floods disrupt freight: modelling supply chain risks under future climates |
Tong M, Higgins A, McFallan S, Islam Z, Marquez L |
https://doi.org/10.36334/modsim2025.G04.tong |
https://mssanz.org.au/modsim2025/files/G04.tong.pdf |
G |
Global change and natural hazards |
G4 |
Projections of regional climate change: from modelling to applications |
T |
| Athukorala R |
When more isn’t always better: Lessons from multi-variable calibration in hydrology |
Athukorala R, Nervi E, Vervoort RW |
https://doi.org/10.36334/modsim2025.C07.athukorala |
https://mssanz.org.au/modsim2025/files/C07.athukorala.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
A |
| Nervi E |
When more isn’t always better: Lessons from multi-variable calibration in hydrology |
Athukorala R, Nervi E, Vervoort RW |
https://doi.org/10.36334/modsim2025.C07.athukorala |
https://mssanz.org.au/modsim2025/files/C07.athukorala.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
N |
| Vervoort RW |
When more isn’t always better: Lessons from multi-variable calibration in hydrology |
Athukorala R, Nervi E, Vervoort RW |
https://doi.org/10.36334/modsim2025.C07.athukorala |
https://mssanz.org.au/modsim2025/files/C07.athukorala.pdf |
C |
Computer science and engineering |
C7 |
Advancing Machine Learning in Hydrology: Ensuring Reliable, Reproducible, and Validated Applications |
V |
| Deng J |
When rain returns but rivers don't: Non-stationary response of streamflow to rainfall |
Deng J, Wang L, Chen Y |
https://doi.org/10.36334/modsim2025.J01.deng |
https://mssanz.org.au/modsim2025/files/J01.deng.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
D |
| McCullough DP |
When rain returns but rivers don't: Non-stationary response of streamflow to rainfall |
Deng J, Wang L, Chen Y |
https://doi.org/10.36334/modsim2025.J01.deng |
https://mssanz.org.au/modsim2025/files/J01.deng.pdf |
J |
Water resources |
J1 |
Long term shifts in hydrological systems |
M |
| Louis S |
When will it happen? On the evaluation of time-to-event, survival time and first-time passage forecasts |
Taggart RJ, Loveday N, Louis S |
https://doi.org/10.36334/modsim2025.K02.taggartr |
https://mssanz.org.au/modsim2025/files/K02.taggartr.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
L |
| Loveday N |
When will it happen? On the evaluation of time-to-event, survival time and first-time passage forecasts |
Taggart RJ, Loveday N, Louis S |
https://doi.org/10.36334/modsim2025.K02.taggartr |
https://mssanz.org.au/modsim2025/files/K02.taggartr.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
L |
| Taggart RJ |
When will it happen? On the evaluation of time-to-event, survival time and first-time passage forecasts |
Taggart RJ, Loveday N, Louis S |
https://doi.org/10.36334/modsim2025.K02.taggartr |
https://mssanz.org.au/modsim2025/files/K02.taggartr.pdf |
K |
Hydroclimate |
K2 |
Statistical, post-processing and verification methods for environmental prediction |
T |
| Bolger M |
Workspace: 20 years retrospective and prospective |
Watkins D, Bolger M, Hetherton L, Thomas D, Cleary PW |
https://doi.org/10.36334/modsim2025.C01.watkins |
https://mssanz.org.au/modsim2025/files/C01.watkins.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
B |
| Cleary PW |
Workspace: 20 years retrospective and prospective |
Watkins D, Bolger M, Hetherton L, Thomas D, Cleary PW |
https://doi.org/10.36334/modsim2025.C01.watkins |
https://mssanz.org.au/modsim2025/files/C01.watkins.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
C |
| Hetherton L |
Workspace: 20 years retrospective and prospective |
Watkins D, Bolger M, Hetherton L, Thomas D, Cleary PW |
https://doi.org/10.36334/modsim2025.C01.watkins |
https://mssanz.org.au/modsim2025/files/C01.watkins.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
H |
| Thomas D (David) |
Workspace: 20 years retrospective and prospective |
Watkins D, Bolger M, Hetherton L, Thomas D, Cleary PW |
https://doi.org/10.36334/modsim2025.C01.watkins |
https://mssanz.org.au/modsim2025/files/C01.watkins.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
T |
| Watkins D |
Workspace: 20 years retrospective and prospective |
Watkins D, Bolger M, Hetherton L, Thomas D, Cleary PW |
https://doi.org/10.36334/modsim2025.C01.watkins |
https://mssanz.org.au/modsim2025/files/C01.watkins.pdf |
C |
Computer science and engineering |
C1 |
Using workflow platforms in modelling and simulation |
W |
| Lerat J |
The tumultuous relationship between flood frequency analysis and streamflow data uncertainty |
Lerat J |
https://doi.org/10.36334/modsim2025.K05.lerat |
https://mssanz.org.au/modsim2025/files/K05.lerat.pdf |
K |
Hydroclimate |
K5 |
When models fail: lessons learned from false starts, wrong turns and dead ends |
L |
| Wasko C |
Learnings from an update to Australia’s flood guidance |
Wasko C |
https://doi.org/10.36334/modsim2025.K05.wasko |
https://mssanz.org.au/modsim2025/files/K05.wasko.pdf |
K |
Hydroclimate |
K5 |
When models fail: lessons learned from false starts, wrong turns and dead ends |
W |