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Adaptive Mutation based on Population Distribution in DE with an individual-dependent mechanism

机译:基于个体依赖机制的DE中基于种群分布的自适应变异

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Differential evolution (DE) is a method of evolutionary computation(EC) with a superior search capability for real-value optimization in nonlinear problems, nondifferential problems and multimodal problems, among others. While various DE methods have been proposed, DE with an individual-dependent mechanism (IDE) features a pair of control strategies and its superior search performance has been confirmed in various benchmark problems. This study aims to further improve the individual-dependent mutation (IDM) strategy in IDE. The IDM strategy divides individuals into superior and inferior populations over the search process and applies mutation in each population. Further, the ps criterion is used as a reference in dividing the population and applying mutation. This criterion changes by the number of generations, but it is not based on the individuals ’information. From our preliminary experiments, premature convergence occurs in some problems. This study focuses on the ps criteria and proposes a method of adaptively controlling the value based on the variance of individuals. Performance evaluation was performed using a 30, 50 and 100-dimensional benchmark problem generally used in EC. In the performance evaluation, we showed that the proposed method significantly outperformed conventional DE and IDE, and improved the search performance by preventing convergence to the local minima in problems prone to such an issue by controlling the variance of the individuals.
机译:微分进化(DE)是一种进化计算(EC)的方法,具有出色的搜索能力,可用于非线性问题,非微分问题和多峰问题等的实际值优化。尽管已经提出了各种DE方法,但是具有个人依赖机制(IDE)的DE具有一对控制策略,并且其优越的搜索性能已在各种基准问题中得到证实。这项研究旨在进一步改善IDE中的个体依赖性突变(IDM)策略。 IDM策略在搜索过程中将个人分为上级人群和下级人群,并在每个人群中应用突变。此外,ps标准用作划分群体和应用突变的参考。此标准会随着世代数的变化而变化,但这并不是基于个人的信息。从我们的初步实验来看,过早收敛发生在某些问题上。这项研究着重于ps标准,并提出了一种基于个体差异来自适应控制价值的方法。使用EC中通常使用的30、50和100维基准问题进行性能评估。在性能评估中,我们表明所提出的方法明显优于常规的DE和IDE,并且通过控制个体的方差来防止在容易出现此类问题的问题中收敛到局部极小值,从而提高了搜索性能。

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