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An Ameliorated Harmony Search Algorithm With Hybrid Convergence Mechanism

机译:具有混合收敛机制的改进和声搜索算法

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The metaheuristic optimization algorithm Harmony search (HS), which imitates the process of music improvisation, is becoming widely used due to its simplicity and easy operation. However, the basic HS has shortcomings of low optimization accuracy and risk of easy falling into local optimum. To overcome these problems, this article develops an ameliorated harmony search algorithm with hybrid convergence mechanism, namely AHS-HCM. For the new method, the so-called hybrid convergence mechanism mainly includes two important schemes. The first scheme is to introduce a convergence coefficient in the harmony improvisation to further adjust the optimization performance, which can improve the final accuracy. The second scheme is to put forward a non-linear convergence domain for the global exploration, it also helps the optimization accuracy and efficiency. Besides, the operation process of new harmony variables generation is modified to enrich the search behavior and contribute to find the global optimum. Fifteen typical CEC’s benchmark functions are selected for experiments, and the results clearly proved the effectiveness of the AHS-HCM. It is shown that, in most cases, the proposed AHS-HCM algorithm is superior to other HS variants as well as some similar famous population-based algorithms in terms of optimization accuracy and stability.
机译:模仿音乐即兴创作过程的和声搜索算法和声搜索算法(HS),由于其简约和操作简便,越来越广泛使用。然而,基本的HS具有低优化精度和容易落入局部最佳的风险的缺点。为了克服这些问题,本文开发了一种具有混合收敛机制的改善和声搜索算法,即AHS-HCM。对于新方法,所谓的混合收敛机制主要包括两个重要方案。第一种方案是在和声即兴的协商中引入收敛系数,以进一步调整优化性能,这可以提高最终精度。第二个方案是提出了全球勘探的非线性融合域,它还有助于优化准确性和效率。此外,修改了新的和谐变量生成的操作过程,以丰富搜索行为并有助于找到全局最佳。为实验选择了十五个典型CEC的基准功能,结果清楚地证明了AHS-HCM的有效性。结果表明,在大多数情况下,所提出的AHS-HCM算法优于其他HS变体以及在优化精度和稳定性方面的一些类似着名的人群算法。

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