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The heterogeneous fleet vehicle routing problem with light loads and overtime: Formulation and population variable neighbourhood search with adaptive memory

机译:轻载和加班的异构机队车辆路径问题:带自适应记忆的公式化和种群变量邻域搜索

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In this paper we consider a real life Vehicle Routing Problem inspired by the gas delivery industry in the United Kingdom. The problem is characterized by heterogeneous vehicle fleet, demand-dependent service times, maximum allowable overtime and a special light load requirement. A mathematical formulation of the problem is developed and optimal solutions for small sized instances are found. A new learning-based Population Variable Neighbourhood Search algorithm is designed to address this real life logistic problem. To the best of our knowledge Adaptive Memory has not been hybridized with a classical iterative memo-ryless method. In this paper we devise and analyse empirically a new and effective hybridization search that considers both memory extraction and exploitation. In terms of practical implications, we show that on a daily basis up to 8% cost savings on average can be achieved when overtime and light load requirements are considered in the decision making process. Moreover, accommodating for allowable overtime has shown to yield 12% better average utilization of the driver's working hours and 12.5% better average utilization of the vehicle load, without a significant increase in running costs. We also further discuss some managerial insights and trade-offs. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在本文中,我们考虑了一个受英国天然气运输行业启发的现实生活中的车辆路径问题。该问题的特点是车队种类繁多,取决于需求的服务时间,最大允许加班时间和特殊的轻载要求。开发了问题的数学公式,并找到了针对小型实例的最佳解决方案。设计了一种新的基于学习的人口变量邻域搜索算法来解决这个现实的物流问题。就我们所知,自适应内存尚未与经典的迭代无记忆方法混合在一起。在本文中,我们根据经验设计和分析了一种既考虑内存提取又考虑利用的新型有效杂交搜索。在实际意义上,我们表明,在决策过程中考虑加班和轻载要求后,每天平均可节省多达8%的成本。此外,考虑到允许的加班时间,驾驶员的工作时间平均利用率提高了12%,车辆负载的平均利用率提高了12.5%,而运行成本却没有明显增加。我们还将进一步讨论一些管理方面的见解和权衡。 (C)2018 Elsevier Ltd.保留所有权利。

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