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On the effect of environment-triggered population diversity compensation methods for memory enhanced UMDA

机译:关于环境触发的种群多样性补偿方法对记忆增强的UMDA的影响

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This paper focuses on the effect of population diversity to environment identification-based memory scheme (EI-MMS) which heuristically compensates population diversity through the storage and retrieving process of historic information. We introduced several diversity compensation measures and combined them with EI-MMS based univariate marginal distribution algorithm (UMDA) from two aspects. First, a basic diversity compensation measure was used to fight against the inherent diversity loss of UMDA. Second, two environment-triggered compensation measures were added in the sense of dynamic environment. Based on the experimental results on three dynamic test problems, the dynamics of population diversity of the corresponding EI-MMS based UMDAs were analyzed and several conclusions about how does the population diversity affect the performance of the algorithm in dynamic environments were drawn.
机译:本文关注人口多样性对基于环境识别的存储方案(EI-MMS)的影响,该方案通过历史信息的存储和检索过程来启发性地补偿人口多样性。我们从两个方面介绍了几种分集补偿措施,并将其与基于EI-MMS的单变量边际分布算法(UMDA)相结合。首先,采用了基本的多样性补偿措施来对抗UMDA固有的多样性损失。其次,从动态环境的意义上说,增加了两种环境触发的补偿措施。基于对三个动态测试问题的实验结果,分析了基于EI-MMS的UMDA对应的种群多样性动态,并得出了关于种群多样性如何在动态环境中影响算法性能的一些结论。

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