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Explaining Heuristic Performance Differences for Vehicle Routing Problems with Time windows

机译:解释带有时间窗的车辆路径问题的启发式性能差异

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Heuristic algorithms are most commonly applied in a competitive context in which the algorithm is tested on well-known benchmarks of some problem application with the objective of obtaining better performance results than the state-of-the-art. Focusing on characterising heuristic algorithm behaviour to acquire insight and knowledge of how these solution procedures operate given a certain problem application, is a rarely applied research context. In this paper we strive to obtain a better understanding of heuristic performance. Based on an exploratory analysis of a large neighbourhood search algorithm applied on instances of the vehicle routing problem with time windows, we perform a detailed study on one of the detected patterns and seek to explain it. We learn that a regret operator functions best when it can take into account many and good alternatives, which is not the case when removing geographical clusters of customers. In the latter case some customers become isolated and have no feasible insertion option in one of the existing routes at the start of the repair phase. Their insertion is therefore postponed, but we show that it is beneficial for performance to assign them a higher priority through the creation of individual routes.
机译:启发式算法最常用于竞争性环境,在竞争性环境中,该算法在某些问题应用程序的众所周知基准上进行测试,目的是获得比最新技术更好的性能结果。专注于表征启发式算法的行为,以获取对于给定问题应用程序这些解决程序如何运行的见识和知识,这是很少应用的研究背景。在本文中,我们努力更好地理解启发式性能。基于对适用于带有时间窗的车辆路径问题实例的大型邻域搜索算法的探索性分析,我们对检测到的一种模式进行了详细研究,并试图对其进行解释。我们了解到,遗憾的运营商在考虑到许多良好的选择后才能发挥最佳的作用,而除去客户的地理位置集群则不是这种情况。在后一种情况下,某些客户在维修阶段开始时便变得孤立,并且在现有路线中没有可行的插入选择。因此,推迟了它们的插入,但是我们表明,通过创建单独的路由为它们分配更高的优先级对于性能是有益的。

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