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首页> 外文期刊>Journal of Water Resources Planning and Management >Evolutionary Computation-Based Methods for Characterizing Contaminant Sources in a Water Distribution System
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Evolutionary Computation-Based Methods for Characterizing Contaminant Sources in a Water Distribution System

机译:配水系统中污染物源特征的基于进化计算的方法

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The area of systematic identification of contamination sources in water distribution systems is in its infancy and is rapidly growing. The real water distribution network problem poses many challenges that current methods usually assume away to facilitate manageable method development and testing. Current methods may not readily and efficiently address issues, such as multiple sources, unknown contamination types with different reaction kinetics, use of different types of sensors with varying degree of resolution, dynamically varying demand and sensor information, and uncertainty and errors in the data and measurements. With the aim of addressing these imminent challenges, this paper reports the findings of an ongoing research investigation that develops and tests an evolutionary algorithm-based flexible and generic procedure, which is structured within a simulation-optimization paradigm. This paper describes the specific implementation of the method using evolution strategies (ESs), a population-based heuristic global search algorithm. A key component of designing this source characterization method is to define a compact, but comprehensive, solution encoding structure. The new method is constructed using a tree-based encoding design to enable the representation of variable-length decision vectors and a set of associated genetic operators that enable an efficient search. This algorithm is successfully tested and demonstrated to have consistently good performance for several instances of an illustrative water distribution contamination case study. As the ES-based algorithm conducts a probabilistic search, its robustness is tested using multiple random trials, and the method is shown to exhibit a robust behavior.
机译:在供水系统中系统识别污染源的领域尚处于起步阶段,并且正在迅速发展。实际的供水网络问题带来了许多挑战,当前的方法通常会承担许多挑战,以促进可管理的方法开发和测试。当前的方法可能无法轻松有效地解决以下问题,例如多种来源,具有不同反应动力学的未知污染类型,使用分辨率不同的不同类型的传感器,动态变化的需求和传感器信息以及数据和数据的不确定性和错误。测量。为了解决这些迫在眉睫的挑战,本文报告了正在进行的研究调查的结果,该研究开发和测试了基于进化算法的灵活通用过程,该过程构建在仿真优化范式内。本文介绍了使用进化策略(ESs)(基于人口的启发式全局搜索算法)的方法的具体实现。设计这种源代码表征方法的关键部分是定义紧凑但全面的解决方案编码结构。新方法是使用基于树的编码设计构造的,以表示可变长度的决策向量,以及一组相关的遗传算子,以实现有效的搜索。该算法已成功测试并证明在示例性水分布污染案例研究的多个实例中始终具有良好的性能。由于基于ES的算法进行了概率搜索,因此使用多个随机试验测试了其鲁棒性,并且该方法显示出鲁棒的行为。

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