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Fuzzy control of parameters to dynamically adapt the HS algorithm for optimization

机译:参数的模糊控制以动态调整HS算法以进行优化

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This paper develops a new fuzzy harmony search algorithm (FHS) for solving optimization problems. FHS employs a novel method using fuzzy logic for adaptation of the harmony memory accepting parameter that enhances the accuracy and convergence rate of the harmony search (HS) algorithm. In this paper the impacts of constant parameters on harmony search algorithm are discussed and a strategy for tuning these parameters is presented. The FHS algorithm has been successfully applied to various benchmarking optimization problems. Numerical results reveal that the proposed algorithm can find better solutions when compared to HS and other heuristic methods and is a powerful search algorithm for various benchmarking optimization problems.
机译:本文开发了一种新的模糊和声搜索算法(FHS)来解决优化问题。 FHS采用一种使用模糊逻辑的新颖方法来调整和声记忆接受参数,从而提高了和声搜索(HS)算法的准确性和收敛速度。本文讨论了常数参数对和声搜索算法的影响,并提出了调整这些参数的策略。 FHS算法已成功应用于各种基准优化问题。数值结果表明,与HS和其他启发式方法相比,该算法可以找到更好的解决方案,并且是针对各种基准优化问题的强大搜索算法。

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