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Two-echelon collaborative multi-depot multi-period vehicle routing problem

机译:双梯队协作多仓多仓车道路由问题

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摘要

Collaboration among logistics operators offers an effective way to improve customer service and freight transportation efficiency. One form of collaboration is the sharing of logistics resources (e.g., delivery vehicles). Existing studies on collaboration and resource sharing have not sufficiently accounted for the time frame within which collaboration happens, and they mostly assume that collaboration among logistics operators occurs in a single time period. This study addresses the issue of collaboration across multiple time periods, in which logistics resources can be shared between different service time periods, by formulating and solving a two-echelon collaborative multi-depot multi-period vehicle routing problem (2E-CMDPVRP). The 2E-CMDPVRP is formulated as a multi-objective integer programming model that minimizes logistics operational costs, service waiting times, and number of vehicles in multiple service periods. A hybrid heuristic algorithm with three-dimensional k-means clustering and improved reference point-based non-dominated sorting genetic algorithm-III (IR-NSGA-III) is proposed to solve the multi-objective optimization model. Comparative analysis results show that the proposed IR-NSGA-III outperforms existing algorithms in terms of the minimization of logistics operational costs, service waiting times, and number of vehicles. The minimum costs remaining saving method and strictly monotonic path selection principle are combined to determine the best profit allocation schemes and the optimal coalition sequences. An empirical case study of a multi-depot multi-period logistics network in Chongqing, China, is used to validate the proposed model and solution algorithm. Results suggest that the proposed collaborative mechanism with multi-depot and multi-period resource sharing can improve the degree of synchronization within a collaborative logistics network, and thus contribute to sustainable development of urban logistics distribution networks.
机译:物流运营商之间的合作提供了一种提高客户服务和货运效率的有效方法。一种合作形式是物流资源的共享(例如,送货车辆)。关于协作和资源共享的现有研究没有足够占合作发生的时间范围,并且主要假设物流运营商之间的协作在一次时间内发生。本研究解决了多个时间段的协作问题,其中通过在不同的服务时间段之间可以在不同的服务时间段之间共享,通过制定和解决两个梯度协同多个仓多阶段车辆路由问题(2E-CMDPVRP)。 2E-CMDPVRP配制为多目标整数编程模型,可最大限度地降低多个服务期间的物流运营成本,服务等待时间和车辆数量。提出了一种具有三维K-Meant聚类和改进的基于参考点的非主导分类遗传算法-III(IR-NSGA-III)的混合启发式算法,以解决多目标优化模型。比较分析结果表明,拟议的IR-NSGA-III在最小化物流运营成本,服务等待时间和车辆数量的最小化方面优于现有算法。剩余的最低成本剩余的节省方法和严格的单调路径选择原理是组合以确定最佳利润分配方案和最佳联盟序列。中国重庆多时代物流网络的经验研究,验证了所提出的模型和解决方案算法。结果表明,具有多仓库和多时期资源共享的拟议协作机制可以提高协作物流网络内的同步程度,从而有助于城市物流配送网络的可持续发展。

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