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Structured Population Size Reduction Differential Evolution with Multiple Mutation Strategies on CEC 2013 real parameter optimization

机译:基于CEC 2013实参优化的具有多重变异策略的结构化种群规模缩减差分进化

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This paper presents a differential evolution (DE) algorithm for real-parameter optimization. The algorithm includes the self-adaptive jDE algorithm with one of its strongest extensions, population reduction, combined with multiple mutation strategies using a structured population. The two mutation strategies used are run dependent on the population size, which is reduced with growing function evaluation number. The population is structured with a separate part where only DE/best strategy is executed and then the best vectors are exchanged with the main population part. Algorithm performance assessment results are presented for 10, 30, and 50 dimension settings for all of the 28 problems included in the Problem Definitions and Evaluation Criteria for the CEC 2013 Special Session and Competition on Real-Parameter Optimization.
机译:本文提出了一种用于实参优化的差分演化(DE)算法。该算法包括自适应jDE算法及其最强大的扩展之一,即种群减少,并结合使用结构化种群的多种突变策略。所使用的两种突变策略取决于种群规模,随着功能评估数量的增加而减少。总体由一个单独的部分构成,其中仅执行DE /最佳策略,然后与主要总体部分交换最佳向量。针对CEC 2013特别会议和实参优化竞赛的问题定义和评估标准中包含的所有28个问题,给出了针对10、30和50维设置的算法性能评估结果。

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