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首页> 外文期刊>Journal of Hydrology >On comparison of two-level and global optimization schemes for layout design of storage ponds
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On comparison of two-level and global optimization schemes for layout design of storage ponds

机译:关于储存池布局设计的两级和全局优化方案的比较

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Optimization techniques have emerged as robust tools to aid the planning and design of urban drainage facilities in cost-effective ways. Such an effort was traditionally aided by heuristic methods (like genetic algorithm), which was generally time-consuming and also challenging in reaching convergence for large-scale problems with wide decision spaces. This study proposed a novel optimization method, denoted as two-level optimization (TO) scheme, for supporting rainwater storage pond design in an urban drainage system. Polynomial regression models were established as surrogate models to facilitate the solution of the optimization framework using traditional iteration algorithm. The TO scheme firstly sought the optimal layout of storage ponds on tributary sub-watersheds, and then proceeded to that of the mainstream one to yield the final solution. Through a case study, the TO scheme was compared with the traditional global optimization (GO) scheme where the physical simulation model was dynamically linked with genetic algorithm (GA) to seek the global optimal solution. The performance of two schemes under different constraint settings was analyzed. Effects of related issues such as start-point selection and mainstream design on tributary sub-watersheds were also discussed. The results showed that the proposed TO scheme is a prominent alternative to the traditional GO scheme to support urban water managers for a more science-based decision making towards storage pond implementation in large-scale practical problems.
机译:优化技术已成为强大的工具,以帮助城市排水设施规划和设计以成本效益的方式。这种努力传统上通过启发式方法(如遗传算法),这通常是耗时的,并且在达到广泛决策空间的大规模问题的收敛方面也是挑战性的。本研究提出了一种新颖的优化方法,表示为两级优化(至)方案,用于支持城市排水系统中的雨水储存池设计。多项式回归模型被建立为代理模型,以便使用传统迭代算法来促进优化框架的解决方案。该方案寻求首先在支流子流域储存池的最佳布局,然后进入了该主流一个以产生最终的溶液。通过案例研究,与传统的全局优化(GO)方案进行比较,其中物理仿真模型与遗传算法(GA)动态相关,以寻求全局最佳解决方案。分析了在不同约束设置下的两个方案的性能。还讨论了与支流分水岭上的起点选择和主流设计等相关问题的影响。结果表明,拟议的计划是传统的GO方案的突出替代方案,以支持城市水管理人员在大规模实际问题中恢复基于科学的储存池内实施。

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