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Optimization Models for a Real-World Snow Plow Routing Problem

机译:现实世界除雪机选路问题的优化模型

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In cold weather cities, snowstorms can have a significant disruptive effect on both mobility and safety, and consequently the faster that streets can be cleared the better. Yet in most cities, plans for snow-plowing are developed using simple allocation schemes that while easy to implement can also be quite inefficient. In this paper we consider the problem of optimizing the routes of a fleet of snow plowing vehicles, subject to street network topology, vehicle operating restrictions, and resource (salt, fuel) usage and replenishment constraints. We develop and analyze the performance of three different optimization models: a mixed-integer programming (MIP) model, a constraint programming (CP) model, and a constructive heuristic procedure that is amplified by an iterative improvement search. The models are evaluated on a set of snow plow routing problems of various sizes, constructed using Open Streets map data of Pittsburgh PA. Experimental results are presented that illustrate the differential strengths and weaknesses of each model, and suggest an alternative hybrid solution approach.
机译:在寒冷的城市中,暴风雪会对交通和安全产生重大破坏性影响,因此,清理街道的速度越快越好。然而,在大多数城市中,使用简单的分配方案制定了除雪计划,尽管分配方案易于实施,但效率也很低。在本文中,我们考虑了优化除雪车队路线的问题,该问题取决于街道网络拓扑,车辆运行限制以及资源(盐,燃料)使用和补给限制。我们开发并分析了三种不同优化模型的性能:混合整数规划(MIP)模型,约束规划(CP)模型以及通过迭代改进搜索得到放大的构造启发式过程。使用匹兹堡宾夕法尼亚州的Open Streets地图数据构建的各种尺寸的集雪犁路径问题,对模型进行了评估。给出的实验结果说明了每种模型的优缺点,并提出了一种替代的混合解决方案方法。

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