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首页> 外文期刊>Journal of Water Resources Planning and Management >Contamination Source Identification in Water Distribution Systems Using an Adaptive Dynamic Optimization Procedure
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Contamination Source Identification in Water Distribution Systems Using an Adaptive Dynamic Optimization Procedure

机译:自适应动态优化程序识别供水系统中的污染源

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摘要

Contamination source identification involves the characterization of the contaminant source based on observations that stream from a set of sensors in a water distribution system (WDS). The streaming data can be processed adaptively to provide an estimate of the source characteristics at any time once the contamination event is detected. In this paper, an adaptive dynamic optimization technique (ADOPT) is proposed for providing a real-time response to a contamination event. A new multiple population-based search that uses an evolutionary algorithm (EA) is investigated. To address nonuniqueness in the initial stages of the search and prevent premature convergence of the EA to an incorrect solution, the multiple populations are designed to maintain a set of alternative solutions that represent various nonunique solutions. As more observations are added, the EA solutions not only migrate to better solution states but the number of solutions decreases as the degree of nonuniqueness diminishes. This new algorithm adaptively converges to the solutions that best match the available observations. The use of the developed method is demonstrated for two WDS networks.
机译:污染源识别涉及根据水分配系统(WDS)中的一组传感器发出的观察结果对污染物源进行表征。一旦检测到污染事件,就可以在任何时候对流数据进行自适应处理,以提供对源特性的估计。在本文中,提出了一种自适应动态优化技术(ADOPT),以提供对污染事件的实时响应。研究了一种使用进化算法(EA)的新的基于多人群的搜索。为了在搜索的初始阶段解决非唯一性并防止EA提前收敛到不正确的解决方案,设计了多个总体以维护代表各种非唯一解决方案的一组替代解决方案。随着增加更多的观察,EA解不仅会迁移到更好的解状态,而且随着非唯一性程度的降低,解的数量也会减少。该新算法自适应地收敛到与可用观测值最匹配的解决方案。已针对两个WDS网络演示了开发方法的使用。

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