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A progressive hedging method for the multi-path travelling salesman problem with stochastic travel times

机译:具有随机旅行时间的多路径旅行商问题的渐进对冲方法

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In this paper, we consider a recently introduced problem specifically designed for Smart Cities and City Logistics applications: the multi-path travelling salesman problem with stochastic travel costs (mpTSP(s)). The mpTSPs is a variant of the TSP problem where a set of paths exists between any two nodes and each path is characterized by a random travel time. We propose a two-stage stochastic programming formulation where tour design makes up the first stage, while recourse decisions related to the choice of the path to follow are made in the second stage. To solve this formulation, we propose a heuristic method inspired by the Progressive Hedging (PH) algorithm of Rockafellar & Wets (1991, Scenarios and policy aggregation in optimization under uncertainty. Math. Oper. Res., 16, 119-147.) We then benchmark the solution method by solving model instances derived from the traffic speed sensor network of the city of Turin. Furthermore, the impact of the stochastic travel time costs on the problem solution is examined, showing the benefits of the proposed methodology in both solution quality and computational effort when compared to solving the deterministic equivalent formulation using a commercial solver.
机译:在本文中,我们考虑了一个最近引入的,专门为智能城市和城市物流应用设计的问题:具有随机旅行成本(mpTSP)的多路径旅行推销员问题。 mpTSP是TSP问题的一种变体,其中任意两个节点之间都存在一组路径,并且每个路径的特征是随机传播时间。我们提出了一个两阶段的随机规划公式,其中旅行设计构成了第一阶段,而与路线选择有关的资源决定则是在第二阶段中做出的。为了解决这个问题,我们提出了一种启发式方法,该方法受Rockafellar&Wets的渐进式对冲(PH)算法启发(1991,不确定性条件下优化中的方案和策略汇总。Math。Oper。Res。,16,119-147。)然后通过求解从都灵市交通速度传感器网络得出的模型实例对解决方法进行基准测试。此外,检查了随机旅行时间成本对问题解决方案的影响,与使用商用求解器求解确定性等效公式相比,显示了所提出方法在解决方案质量和计算量上的优势。

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