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首页> 外文期刊>European Journal of Operational Research >Optimal a priori tour and restocking policy for the single-vehicle routing problem with stochastic demands
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Optimal a priori tour and restocking policy for the single-vehicle routing problem with stochastic demands

机译:随机需求最优为单辆车路由问题的先验旅游和补充策略

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We present a model for the single-vehicle routing problem with stochastic demands (SVRPSD) with optimal restocking. The model is derived from a characterization of the SVRPSD as a Markov decision process (MDP) controlled by a certain class of policies, and is valid for general discrete demand probability distributions. We transform this MDP into an equivalent mixed-integer linear model, which is then used to solve small instances to optimality. By doing so, we are able to quantify the drawbacks associated with the detour-to-depot restocking policy, an assumption of many exact approaches for the (multivehicle) VRPSD. We also examine the tradeoff between the deterministic a priori cost and the stochastic restocking cost for varying route load scenarios. Finally, a wait-and-see model for the SVRPSD is proposed, and is used within a parallel heuristic to solve larger literature instances with up to 150 nodes and Poisson distributed demands. Computational experiments demonstrate the effectiveness of the heuristic approach, and also indicate under which circumstances near-optimal solutions can be obtained by the myopic strategy of a priori route cost minimization. (C) 2018 Elsevier B.V. All rights reserved.
机译:我们提出了一种具有随机需求(SVRPSD)的单车道路由问题,具有最佳补充。该模型从SVRPSD的表征导出为由某个类别的策略控制的马尔可夫决策过程(MDP),并且对于一般离散需求概率分布是有效的。我们将此MDP转换为等效的混合整数线性模型,然后用于解决小型实例到最优性。通过这样做,我们能够量化与绕行到仓库补充策略相关的缺点,假设(多维力线)VRPSD的许多精确方法。我们还研究了确定性的先验成本和随机重新分配成本之间的权衡,以实现不同的路径负荷方案。最后,提出了SVRPSD的等待和见图模型,并在并行启发式中使用,以解决最多150个节点和Poisson分布式需求的更大的文献实例。计算实验证明了启发式方法的有效性,并且还指示在哪种情况下,可以通过先验路线成本最小化的近视策略来获得近最佳解决方案的情况。 (c)2018年elestvier b.v.保留所有权利。

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