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Population Implosion in Genetic Programming

机译:遗传规划中的种群内爆

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摘要

With the exception of a small body of adaptive-parameter literature, evolutionary computation has traditionally favored keeping the population size constant through the course of the run. Unfortunately, genetic programming has an aging problem: for various reasons, late in the run the technique become less effective at optimization. Given a fixed number of evaluations, allocating many of them late in the run may thus not be a good strategy. In this paper we experiment with gradually decreasing the population size throughout a genetic programming run, in order to reallocate more evaluations to early generations. Our results show that over fout problem domains and three different numbers of evaluations, decreasing the population size is always as good as, and frequently better than, various fixed-sized population strategies.
机译:除了少量的自适应参数文献,进化计算传统上倾向于在整个运行过程中保持种群大小不变。不幸的是,基因编程存在一个老化问题:由于各种原因,在运行后期,该技术在优化方面的效率降低。给定固定数量的评估,因此在运行后期分配许多评估可能不是一个好的策略。在本文中,我们尝试在整个基因编程过程中逐渐减少种群数量,以便将更多评估重新分配给早期人。我们的结果表明,在问题问题域和三种不同的评估数量上,减少人口规模总是与各种固定规模的人口战略一样好,而且往往比各种固定大小的人口战略更好。

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