@article{Huber-2019-Agent-Based,
title = "Agent-Based Modelling of a Coupled Water Demand and Supply System at the Catchment Scale",
author = "Huber, Lisa and
Bahro, Nico and
Leitinger, Georg and
Tappeiner, Ulrike and
Strasser, Ulrich",
journal = "Sustainability, Volume 11, Issue 21",
volume = "11",
number = "21",
year = "2019",
publisher = "MDPI AG",
url = "https://gwf-uwaterloo.github.io/gwf-publications/G19-13001",
doi = "10.3390/su11216178",
pages = "6178",
abstract = "Water is of uttermost importance for human well-being and a central resource in sustainable development. Many simulation models for sustainable water management, however, lack explanatory and predictive power because the two-way dynamic feedbacks between human and water systems are neglected. With Agent-based Modelling of Resources (Aqua.MORE; here, of the resource water), we present a platform that can support understanding, interpretation and scenario development of resource flows in coupled human{--}water systems at the catchment scale. Aqua.MORE simulates the water resources in a demand and supply system, whereby water fluxes and socioeconomic actors are represented by individual agents that mutually interact and cause complex feedback loops. First, we describe the key steps for developing an agent-based model (ABM) of water demand and supply, using the platform Aqua.MORE. Second, we illustrate the modelling process by application in an idealized Alpine valley, characterized by touristic and agricultural water demand sectors. Here, the implementation and analysis of scenarios highlights the possibilities of Aqua.MORE (1) to easily deploy case study-specific agents and characterize them, (2) to evaluate feedbacks between water demand and supply and (3) to compare the effects of different agent behavior or water use strategies. Thereby, we corroborate the potential of Aqua.MORE as a decision-support tool for sustainable watershed management.",
}
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<abstract>Water is of uttermost importance for human well-being and a central resource in sustainable development. Many simulation models for sustainable water management, however, lack explanatory and predictive power because the two-way dynamic feedbacks between human and water systems are neglected. With Agent-based Modelling of Resources (Aqua.MORE; here, of the resource water), we present a platform that can support understanding, interpretation and scenario development of resource flows in coupled human–water systems at the catchment scale. Aqua.MORE simulates the water resources in a demand and supply system, whereby water fluxes and socioeconomic actors are represented by individual agents that mutually interact and cause complex feedback loops. First, we describe the key steps for developing an agent-based model (ABM) of water demand and supply, using the platform Aqua.MORE. Second, we illustrate the modelling process by application in an idealized Alpine valley, characterized by touristic and agricultural water demand sectors. Here, the implementation and analysis of scenarios highlights the possibilities of Aqua.MORE (1) to easily deploy case study-specific agents and characterize them, (2) to evaluate feedbacks between water demand and supply and (3) to compare the effects of different agent behavior or water use strategies. Thereby, we corroborate the potential of Aqua.MORE as a decision-support tool for sustainable watershed management.</abstract>
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%0 Journal Article
%T Agent-Based Modelling of a Coupled Water Demand and Supply System at the Catchment Scale
%A Huber, Lisa
%A Bahro, Nico
%A Leitinger, Georg
%A Tappeiner, Ulrike
%A Strasser, Ulrich
%J Sustainability, Volume 11, Issue 21
%D 2019
%V 11
%N 21
%I MDPI AG
%F Huber-2019-Agent-Based
%X Water is of uttermost importance for human well-being and a central resource in sustainable development. Many simulation models for sustainable water management, however, lack explanatory and predictive power because the two-way dynamic feedbacks between human and water systems are neglected. With Agent-based Modelling of Resources (Aqua.MORE; here, of the resource water), we present a platform that can support understanding, interpretation and scenario development of resource flows in coupled human–water systems at the catchment scale. Aqua.MORE simulates the water resources in a demand and supply system, whereby water fluxes and socioeconomic actors are represented by individual agents that mutually interact and cause complex feedback loops. First, we describe the key steps for developing an agent-based model (ABM) of water demand and supply, using the platform Aqua.MORE. Second, we illustrate the modelling process by application in an idealized Alpine valley, characterized by touristic and agricultural water demand sectors. Here, the implementation and analysis of scenarios highlights the possibilities of Aqua.MORE (1) to easily deploy case study-specific agents and characterize them, (2) to evaluate feedbacks between water demand and supply and (3) to compare the effects of different agent behavior or water use strategies. Thereby, we corroborate the potential of Aqua.MORE as a decision-support tool for sustainable watershed management.
%R 10.3390/su11216178
%U https://gwf-uwaterloo.github.io/gwf-publications/G19-13001
%U https://doi.org/10.3390/su11216178
%P 6178
Markdown (Informal)
[Agent-Based Modelling of a Coupled Water Demand and Supply System at the Catchment Scale](https://gwf-uwaterloo.github.io/gwf-publications/G19-13001) (Huber et al., GWF 2019)
ACL
- Lisa Huber, Nico Bahro, Georg Leitinger, Ulrike Tappeiner, and Ulrich Strasser. 2019. Agent-Based Modelling of a Coupled Water Demand and Supply System at the Catchment Scale. Sustainability, Volume 11, Issue 21, 11(21):6178.