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Application and Development of Enhanced Chaotic Grasshopper Optimization Algorithms

机译:增强型混沌蚂蚱优化算法的应用与发展

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摘要

In recent years, metaheuristic algorithms have revolutionized the world with their better problem solving capacity. Any met-aheuristic algorithm has two phases: exploration and exploitation. The ability of the algorithm to solve a difficult optimization problem depends upon the efficacy of these two phases. These two phases are tied with a bridging mechanism, which plays an important role. This paper presents an application of chaotic maps to improve the bridging mechanism of Grasshopper Optimisation Algorithm (GOA) by embedding 10 different maps. This experiment evolves 10 different chaotic variants of GOA, and they are named as Enhanced Chaotic Grasshopper Optimization Algorithms (ECGOAs). The performance of these variants is tested over ten shifted and biased unimodal and multimodal benchmark functions. Further, the applications of these variants have been evaluated on three-bar truss design problem and frequency-modulated sound synthesis parameter estimation problem. Results reveal that the chaotic mechanism enhances the performance of GOA. Further, the results of the Wilcoxon rank sum test also establish the efficacy of the proposed variants.
机译:近年来,元启发式算法凭借其更好的问题解决能力,彻底改变了世界。任何基于气象的算法都有两个阶段:探索和开发。该算法解决难题的能力取决于这两个阶段的效率。这两个阶段都与桥接机制联系在一起,而桥接机制起着重要的作用。本文提出了一种通过嵌入10个不同的映射图来改进Grasshopper优化算法(GOA)桥接机制的混沌映射图的应用。该实验会演化出10种不同的GOA混沌变种,它们被称为增强型混沌蚱hopper优化算法(ECGOA)。这些变体的性能在十个偏移和偏斜的单峰和多峰基准函数上进行了测试。此外,这些变体的应用已针对三杆桁架设计问题和调频声音合成参数估计问题进行了评估。结果表明,混沌机制增强了GOA的性能。此外,Wilcoxon秩和检验的结果也确定了所提出的变体的功效。

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  • 来源
    《Modelling and simulation in engineering》 |2018年第2018期|4945157.1-4945157.14|共14页
  • 作者单位

    Swami Keshvanand Institute of Technology, Jaipur 302017, India;

    Swami Keshvanand Institute of Technology, Jaipur 302017, India;

    Malaviya National Institute of Technology, Jaipur 302017, India;

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