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Self-adaptive multi-objective harmony search for optimal design of water distribution networks

机译:自适应多目标和声寻求水分配网络的最佳设计

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摘要

In multi-objective optimization computing, it is important to assign suitable parameters to each optimization problem to obtain better solutions. In this study, a self-adaptive multi-objective harmony search (SaMOHS) algorithm is developed to apply the parameter-setting-free technique, which is an example of a self-adaptive methodology. The SaMOHS algorithm attempts to remove some of the inconvenience from parameter setting and selects the most adaptive parameters during the iterative solution search process. To verify the proposed algorithm, an optimal least cost water distribution network design problem is applied to three different target networks. The results are compared with other well-known algorithms such as multi-objective harmony search and the non-dominated sorting genetic algorithm-II. The efficiency of the proposed algorithm is quantified by suitable performance indices. The results indicate that SaMOHS can be efficiently applied to the search for Pareto-optimal solutions in a multi-objective solution space.
机译:在多目标优化计算中,重要的是为每个优化问题分配合适的参数以获得更好的解决方案。在本研究中,开发了一种自适应多目标和平搜索(SAMOHS)算法以应用无参数无设法技术,这是自适应方法的示例。 SAMOHS算法尝试从参数设置中删除一些不便,并在迭代解决方案搜索过程中选择最适应性的参数。为了验证所提出的算法,最佳最低成本水分配网络设计问题应用于三个不同的目标网络。将结果与其他众所周知的算法进行比较,例如多目标和平搜索和非主导的分类遗传算法-II。通过合适的性能指标量化所提出的算法的效率。结果表明,在多目标解决方案空间中,可以有效地应用于搜索帕累托最佳解决方案的SAMOH。

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