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首页> 外文期刊>Evolutionary Computation, IEEE Transactions on >The Effects of Constant and Bit-Wise Neutrality on Problem Hardness, Fitness Distance Correlation and Phenotypic Mutation Rates
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The Effects of Constant and Bit-Wise Neutrality on Problem Hardness, Fitness Distance Correlation and Phenotypic Mutation Rates

机译:常数和位中性对问题硬度,适应距离相关性和表型突变率的影响

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摘要

Kimura's neutral theory of evolution has inspired researchers from the evolutionary computation community to incorporate neutrality into evolutionary algorithms (EAs) in the hope that it can aid evolution. The effects of neutrality on evolutionary search have been considered in a number of studies, the results of which, however, have been highly contradictory. In this paper, we analyze the reasons for this and make an effort to shed some light on neutrality by addressing them. We consider two very simple forms of neutrality: constant neutrality-a neutral network of constant fitness, identically distributed in the whole search space-and bit-wise neutrality, where each phenotypic bit is obtained by transforming a group of genotypic bits via an encoding function. We study these forms of neutrality both theoretically and empirically (both for standard benchmark functions and a class of random MAX-SAT problems) to see how and why they influence the behavior and performance of a mutation-based EA. In particular, we analyze how the fitness distance correlation of landscapes changes under the effect of different neutral encodings and how phenotypic mutation rates vary as a function of genotypic mutation rates. Both help explain why the behavior of a mutation-based EA may change so radically as problem, form of neutrality, and mutation rate are varied.
机译:木村(Kimura)的中性进化理论启发了进化计算社区的研究人员,将中性纳入进化算法(EA)中,希望它可以帮助进化。在许多研究中已经考虑了中立性对进化搜索的影响,然而,其结果却高度矛盾。在本文中,我们分析了造成这种情况的原因,并努力通过解决这些问题来阐明一些中立性。我们考虑两种非常简单的中性形式:恒定中性-恒定适应性的中性网络,在整个搜索空间中均等分布-逐位中性,其中每个表型位是通过编码函数对一组基因型位进行变换而获得的。我们在理论和经验上研究了这些形式的中立性(包括标准基准函数和一类随机MAX-SAT问题),以了解它们如何以及为何影响基于突变的EA的行为和性能。特别是,我们分析了景观的适应距离相关性如何在不同的中性编码的作用下发生变化,以及表型突变率如何随基因型突变率而变化。两者都有助于解释为什么基于问题的EA行为可能会随着问题,中立形式和突变率的变化而发生根本性的变化。

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