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Performance comparison of local search operators in differential evolution for constrained numerical optimization problems

机译:受约束的数值优化问题的局部搜索算子在差分演化中的性能比较

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This paper analyzes the relationship between the performance of the local search operator within a Memetic Algorithm and its final results in constrained numerical optimization problems by adapting an improvement index measure, which indicates the rate of fitness improvement made by the local search operator. To perform this analysis, adaptations of Nealder-Mead, Hooke-Jeeves and Hill Climber algorithms are used as local search operators, separately, in a Memetic DE-based structure, where the best solution in the population is used to exploit promising areas in the search space by the aforementioned local search operators. The "-constrained method is adopted as a constraint-handling technique. The approaches are tested on thirty six benchmark problems used in the special session on "Single Objective Constrained Real-Parameter Optimization" in CEC'2010. The results suggest that the algorithm coordination proposed is suitable to solve constrained problems and those results also show that a poor value of the improvement index measure does not necessarily reflect on poor final results obtained by the MA in a constrained search space.
机译:本文通过采用改进指标测度来分析Memetic算法中本地搜索算子的性能与其在受限数值优化问题中最终结果之间的关系,该指标指示了本地搜索算子的适应度提高率。为了执行此分析,在基于Memetic DE的结构中,分别将Nealder-Mead,Hooke-Jeeves和Hill Climber算法的改编用作本地搜索运算符,其中使用了人口中的最佳解决方案来开发有希望的地区。上述本地搜索运算符的搜索空间。 “约束方法”被用作约束处理技术。针对在CEC'2010的“单目标约束实参数优化”特别会议上使用的36个基准测试问题对方法进行了测试。结果表明算法协调提出的方法适合于解决约束问题,并且这些结果还表明,改进指标测度的较差值不一定反映了MA在约束搜索空间中获得的较差的最终结果。

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