A Visual Analytics System for Water Distribution System Optimization

Yiran Li, Erin Musabandesu, Takanori Fujiwara, F. Loge, K. Ma
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引用次数: 1

Abstract

The optimization of water distribution systems (WDSs) is vital to minimize energy costs required for their operations. A principal approach taken by researchers is identifying an optimal scheme for water pump controls through examining computational simulations of WDSs. However, due to a large number of possible control combinations and the complexity of WDS simulations, it remains non-trivial to identify the best pump controls by reviewing the simulation results. To address this problem, we design a visual analytics system that helps understand relationships between simulation inputs and outputs towards better optimization. Our system incorporates interpretable machine learning as well as multiple linked visualizations to capture essential input-output relationships from complex WDS simulations. We demonstrate our system’s effectiveness through a practical case study and evaluate its usability through expert reviews. Our results show that our system can lessen the burden of analysis and assist in determining optimal operating schemes.
配水系统优化的可视化分析系统
水分配系统(WDSs)的优化对于最小化其运行所需的能源成本至关重要。研究人员采用的主要方法是通过检查wds的计算模拟来确定水泵控制的最佳方案。然而,由于大量可能的控制组合和WDS仿真的复杂性,通过回顾仿真结果来确定最佳的泵控制仍然不是一件容易的事情。为了解决这个问题,我们设计了一个可视化分析系统,帮助理解模拟输入和输出之间的关系,以实现更好的优化。我们的系统结合了可解释的机器学习以及多个链接的可视化,从复杂的WDS模拟中捕获基本的输入-输出关系。我们通过实际案例研究证明了系统的有效性,并通过专家评审评估了系统的可用性。结果表明,该系统可以减轻分析负担,并有助于确定最优运行方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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