A Monte-Carlo study of genetic algorithm initial population generation methods

R. Hill
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引用次数: 42

Abstract

Briefly describes genetic algorithms (GAs) and focuses attention on initial population generation methods for 2D knapsack problems. Based on work describing the probability that a random solution vector is feasible for 0-1 knapsack problems, we propose a simple heuristic for randomly generating good initial populations for GA applications to 2D knapsack problems. We report on an experiment comparing a current population generation technique with our proposed approach and find our proposed approach does a very good job of generating good initial populations.
一种蒙特卡罗研究遗传算法的初始种群生成方法
简要介绍了遗传算法(GAs),重点介绍了二维背包问题的初始种群生成方法。在描述0-1个背包问题随机解向量可行概率的基础上,我们提出了一种简单的启发式方法,用于随机生成良好的初始种群,用于遗传算法应用于二维背包问题。我们报告了一个实验,将当前的种群生成技术与我们提出的方法进行比较,发现我们提出的方法在生成良好的初始种群方面做得很好。
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