对接能力有限的商场协同配送

Ruidian Song, H. Lau, Xue Luo, Lei Zhao
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引用次数: 6

摘要

购物中心密集分布在新加坡和香港等主要城市。这些购物中心的租户向其签约的物流服务提供商产生大量的货运订单,而后者则独立规划自己的送货时间表。这些不协调的配送和有限的对接能力共同造成了购物中心的拥堵。配送协调平台为物流服务商集中规划车辆路线,同时安排配送订单在商场的停靠时段。车辆路线和码头调度决策需要在出行时间和服务时间不确定的背景下,根据实际操作规则进行联合决策。我们将此问题建模为两阶段随机混合整数规划,开发了一种自适应大邻域搜索算法,该算法使用各种样本量近似第二阶段的资源函数,并检查了相关的样本内和样本外稳定性。我们在新加坡的一个实例试验台上进行了数值研究,证明了协调的价值和随机解的价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Coordinated Delivery to Shopping Malls with Limited Docking Capacity
Shopping malls are densely located in major cities such as Singapore and Hong Kong. Tenants in these shopping malls generate a large number of freight orders to their contracted logistics service providers, who independently plan their own delivery schedules. These uncoordinated deliveries and limited docking capacity jointly cause congestion at the shopping malls. A delivery coordination platform centrally plans the vehicle routes for the logistics service providers and simultaneously schedules the dock time slots at the shopping malls for the delivery orders. Vehicle routing and dock scheduling decisions need to be made jointly against the backdrop of travel time and service time uncertainty and subject to practical operations rules. We model this problem as a two-stage stochastic mixed integer program, develop an adaptive large neighborhood search algorithm that approximates the second stage recourse function using various sample sizes, and examine the associated in-sample and out-of-sample stability. Our numerical study on a testbed of instances based on real data in Singapore demonstrates the value of coordination and the value of stochastic solutions.
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