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Multiobjective Optimization for Multiperiod Reverse Logistics Network Design

机译:多时期逆向物流网络设计的多目标优化

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摘要

In recent years, the ever-rising return streams for repair service have forced the electronics manufacturers to expand their reverse logistics capacities. However, most existing papers on the reverse logistics network design neglected the time sensitivity of the return flows. Moreover, most of these investigations were primarily concerned with the single objective problems of either minimizing the total cost or maximizing the profit. In this paper, we propose a biobjective mixed-integer linear programming model for the multiperiod design problem of a reverse logistics network for repair service. A multiperiod setting is taken into account to make the reverse logistics network flexible to accommodate the gradual changes in the capacity of the facilities and the network configuration. To solve the NP-hard problem with biobjective, we develop a hybrid evolutionary algorithm that combines nondominated sorting genetic algorithm II (NSGA-II) with a local search method. We compare the hybrid evolutionary algorithm with NSGA-II and ϵ-constraint method using numerical examples. The comparison results indicate that the hybrid evolutionary algorithm outperforms the NSGA-II in most cases. The ϵ-constraint method performs best for the small instances, but it cannot solve large instances within reasonable time. Finally, an extensive parametric analysis is conducted and several managerial insights are derived.
机译:近年来,不断增长的返修流迫使电子制造商扩大其逆向物流能力。但是,大多数有关逆向物流网络设计的论文都忽略了回流的时间敏感性。而且,大多数这些调查主要与最小化总成本或最大化利润的单一目标问题有关。本文针对维修服务逆向物流网络的多周期设计问题,提出了一种双目标混合整数线性规划模型。考虑到多期间设置以使反向物流网络具有灵活性,以适应设施容量和网络配置的逐渐变化。为了解决具有双目标的NP难题,我们开发了一种混合进化算法,将非主导排序遗传算法II(NSGA-II)与局部搜索方法相结合。我们使用数值实例将混合进化算法与NSGA-II和ϵ-约束方法进行了比较。比较结果表明,混合进化算法在大多数情况下都优于NSGA-II。 ϵ-constraint方法在小型实例中表现最佳,但无法在合理的时间内解决大型实例。最后,进行了广泛的参数分析,并得出了一些管理方面的见解。

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