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An adaptive genetic algorithm with diversity-guided mutation and its global convergence property

机译:具有多样性指导变异的自适应遗传算法及其全局收敛性

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摘要

An adaptive genetic algorithm with diversity-guided mutation, which combines adaptive probabilities of crossover and mutation was proposed. By means of homogeneous finite Markov chains, it is proved that adaptive genetic algorithm with diversity-guided mutation and genetic algorithm with diversity-guided mutation converge to the global optimum if they maintain the best solutions, and the convergence of adaptive genetic algorithms with adaptive probabilities of crossover and mutation was studied. The performances of the above algorithms in optimizing several unimodal and multimodal functions were compared. The results show that for multimodal functions the average convergence generation of the adaptive genetic algorithm with diversity-guided mutation is about 900 less than that of adaptive genetic algorithm with adaptive probabilities and genetic algorithm with diversity-guided mutation, and the adaptive genetic algorithm with diversity-guided mutation does not lead to premature convergence. It is also shown that the better balance between overcoming premature convergence and quickening convergence speed can be gotten.
机译:提出了一种具有多样性指导变异的自适应遗传算法,该算法结合了交叉和变异的自适应概率。通过齐次有限马尔可夫链,证明了具有最优解的具有多样性导引变异的自适应遗传算法和具有多样性导引变异的遗传算法收敛于全局最优,并且具有自适应概率的自适应遗传算法具有收敛性。研究了交叉和突变。比较了上述算法在优化几个单峰函数和多峰函数中的性能。结果表明,对于多峰函数,具有多样性指导变异的自适应遗传算法和具有多样性指导变异的遗传算法以及具有多样性指导变异的遗传算法的平均收敛生成量约减少900倍。引导的突变不会导致过早收敛。研究还表明,克服早熟和加快收敛速度​​之间可以达到较好的平衡。

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