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A combined NLP-differential evolution algorithm approach for the optimization of looped water distribution systems

机译:一种用于优化环状配水系统的NLp差分进化算法

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摘要

This paper proposes a novel optimization approach for the least cost design of looped water distribution systems (WDSs). Three distinct steps are involved in the proposed optimization approach. In the first step, the shortest-distance tree within the looped network is identified using the Dijkstra graph theory algorithm, for which an extension is proposed to find the shortest-distance tree for multisource WDSs. In the second step, a nonlinear programming (NLP) solver is employed to optimize the pipe diameters for the shortest-distance tree (chords of the shortest-distance tree are allocated the minimum allowable pipe sizes). Finally, in the third step, the original looped water network is optimized using a differential evolution (DE) algorithm seeded with diameters in the proximity of the continuous pipe sizes obtained in step two. As such, the proposed optimization approach combines the traditional deterministic optimization technique of NLP with the emerging evolutionary algorithm DE via the proposed network decomposition. The proposed methodology has been tested on four looped WDSs with the number of decision variables ranging from 21 to 454. Results obtained show the proposed approach is able to find optimal solutions with significantly less computational effort than other optimization techniques.
机译:本文提出了一种新颖的优化方法,用于循环水分配系统(WDS)的最低成本设计。所建议的优化方法涉及三个不同的步骤。第一步,使用Dijkstra图论算法识别环路网络中的最短距离树,为此提出了扩展以找到多源WDS的最短距离树。第二步,使用非线性编程(NLP)求解器优化最短距离树的管道直径(为最短距离树的弦分配最小允许的管道尺寸)。最后,在第三步中,使用微分演化(DE)算法优化原始环网,该算法的播种直径是在第二步中获得的连续管道尺寸附近。这样,所提出的优化方法通过所提出的网络分解将传统的NLP确定性优化技术与新兴的进化算法DE相结合。所提出的方法已在4个循环WDS上进行了测试,决策变量的数量在21到454之间。获得的结果表明,与其他优化技术相比,所提出的方法能够以更少的计算量找到最佳解决方案。

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