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Feasible Initial Population with Genetic Diversity for a Population-Based Algorithm Applied to the Vehicle Routing Problem with Time Windows

机译:基于遗传算法的具有遗传多样性的可行初始种群应用于带时间窗的车辆路径问题

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摘要

A stochastic algorithm for obtaining feasible initial populations to the Vehicle Routing Problem with Time windows is presented. The theoretical formulation for the Vehicle Routing Problem with Time Windows is explained. The proposed method is primarily divided into a clustering algorithm and a two-phase algorithm. The first step is the application of a modified k-means clustering algorithm which is proposed in this paper. The two-phase algorithm evaluates a partial solution to transform it into a feasible individual. The two-phase algorithm consists of a hybridization of four kinds of insertions which interact randomly to obtain feasible individuals. It has been proven that different kinds of insertions impact the diversity among individuals in initial populations, which is crucial for population-based algorithm behavior. A modification to the Hamming distance method is applied to the populations generated for the Vehicle Routing Problem with Time Windows to evaluate their diversity. Experimental tests were performed based on the Solomon benchmarking. Experimental results show that the proposed method facilitates generation of highly diverse populations, which vary according to the type and distribution of the instances.
机译:提出了一种随机算法,用于获得带有时间窗的车辆路径问题的可行初始种群。解释了带有时间窗的车辆路径问题的理论公式。提出的方法主要分为聚类算法和两阶段算法。第一步是本文提出的一种改进的k均值聚类算法的应用。两阶段算法评估部分解决方案以将其转化为可行的个体。两阶段算法包括四种插入的杂交,这些插入随机相互作用以获得可行的个体。已经证明,不同种类的插入会影响初始种群中个体之间的多样性,这对于基于种群的算法行为至关重要。对汉明距离法的一种修改适用于为带有时间窗的车辆路径问题生成的总体,以评估其多样性。根据所罗门基准测试进行了实验测试。实验结果表明,所提出的方法有助于生成高度多样化的种群,这些种群根据实例的类型和分布而变化。

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  • 来源
    《Mathematical Problems in Engineering》 |2016年第2期|3851520.1-3851520.11|共11页
  • 作者单位

    Autonomous Univ Morelos State, Res Ctr Engn & Appl Sci, Ave Univ 1001, Cuernavaca 62209, Morelos, Mexico;

    Autonomous Univ Morelos State, Res Ctr Engn & Appl Sci, Ave Univ 1001, Cuernavaca 62209, Morelos, Mexico;

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