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首页> 外文期刊>Journal of Water Resources Planning and Management >Service-Driven Modeling Approach to Managing Water Allocation in Priority Doctrine Regions
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Service-Driven Modeling Approach to Managing Water Allocation in Priority Doctrine Regions

机译:优先权地区水分配的服务驱动的建模方法

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This work focuses on developing methods to better manage significant imbalances between water supply and demand during droughts. A service-driven approach (Model as a Service, or MaaS) is used to couple river modeling services with optimization services for determining optimal water allocation strategies under daily drought scenarios. It demonstrates the promise of coupling simulation-optimization model services to improve real-time water management in a service driven framework, which should be beneficial to many other water resource applications. The approach is implemented using the DataWolf workflow tool and AzureML Cloud machine learning services and applied to an April 2015 drought event in the Upper Guadalupe River Basin, Texas. Weather and water demand uncertainty are considered through scenario-based optimization. The optimization objective is to minimize the daily total curtailment hours across all groups of permit holders. The scenario analysis shows that the current permit grouping system has a significant impact on the optimal water allocation strategy. The scenarios also demonstrate that noncompliance of junior water users is predicted to have a much greater effect on the river system than noncompliance of senior water users. The resulting framework can be deployed for water allocation in any area by updating water user information, water allocation policy constraints, and river data that can be obtained from publicly available sources.
机译:这项工作侧重于开发方法,以更好地管理干旱期间供水与需求之间的显着不平衡。服务驱动的方法(型号作为服务或MAA)用于将河流建模服务与优化服务结合,以确定日常干旱场景下的最佳水分配策略。它展示了耦合仿真优化模型服务的承诺,以改善服务驱动框架中的实时水管理,这应该有利于许多其他水资源应用。该方法是使用DataWolf Workflow工具和Azureml云机学习服务实施的,并应用于德克萨斯州上瓜达卢佩河流域的2015年4月干旱活动。通过基于场景的优化考虑了天气和水需求不确定性。优化目标是最大限度地减少所有许可证持有人群体的每日缩减时间。情景分析表明,当前许可分组系统对最佳水分配策略产生了重大影响。这种情况还表明,初级水用户的不合规预计对河流系统产生了更大的影响,而不是高级水用户的不合规。通过更新可以从公共可用来源获得的水用户信息,水分配策略约束和河流数据,可以部署所得到的框架在任何区域中进行水分配。

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