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Relationships between parent selection methods, looping constructs, and success rate in genetic programming

机译:遗传编程中父选择方法,循环构建和成功率之间的关系

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In genetic programming, parent selection methods are employed to select promising candidate individuals from the current generation that can be used as parents for the next generation. These algorithms can affect, sometimes indirectly, whether or not individuals containing certain programming constructs, such as loops, are selected and propagated in the population. This in turn can affect the chances that the population will produce a solution to the problem. In this paper, we present the results of the experiments using three different parent selection methods on four benchmark program synthesis problems. We analyze the relationships between the selection methods, the numbers of individuals in the population that make use of loops, and success rates. The results show that the support for the selection of specialists is associated both with the use of loops in evolving populations and with higher success rates.
机译:在遗传编程中,采用父选择方法来选择来自当前一代的有希望的候选人,可以用作下一代的父母。 这些算法有时间接地影响包含某些编程构造的个体,例如环路,例如循环,在人口中传播。 这反过来可能会影响人口将产生解决问题的机会。 在本文中,我们在四个基准程序合成问题上使用三种不同的父选择方法介绍了实验结果。 我们分析了选择方法之间的关系,利用循环和成功率的人口中的个人数量。 结果表明,在不断发展的人群中使用循环和更高的成功率,对选择专家选择的支持。

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