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Design of Fixed and Ladder Mutation Factor-Based Clonal Selection Algorithm for Solving Unimodal and Multimodal Functions

机译:基于固定梯形突变因子克隆选择算法的设计,用于解决单峰和多模函数

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摘要

Clonal selection algorithms (CSAs) is a special class of immune algorithms (IA), inspired by the clonal selection principle of the human immune system. To improve the algorithm's ability to perform better, this CSA has been modified by implementing two new concepts called fixed mutation factor and ladder mutation factor. Fixed mutation factor maintains a constant factor throughout the process, where as ladder mutation factor changes adaptively based on the affinity of antibodies. This paper compared the conventional CLONALG, with the two proposed approaches and tested on several standard benchmark functions. Experimental results empirically show that the proposed methods ladder mutation-based clonal selection algorithm (LMCSA) and fixed mutation clonal selection algorithm (FMCSA) significantly outperform the existing CLONALG method in terms of quality of the solution, convergence speed, and solution stability.
机译:克隆选择算法(CSAS)是一种特殊的免疫算法(IA),受到人类免疫系统的克隆选择原理的启发。为了提高算法执行更好的能力,通过实现称为固定突变因子和梯形突变因子的两个新概念来修改该CSA。固定突变因子在整个过程中保持恒定因子,其中基于抗体的亲和力,随着梯形突变因子的变化。本文比较了传统的克隆,用两种建议的方法和测试了几种标准基准函数。实验结果证明,所提出的方法基于梯形突变的克隆选择算法(LMCSA)和固定突变克隆选择算法(FMCSA)在解决方案,收敛速度和解决方案稳定性的质量方面显着优于现有的克隆方法。

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