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Mitigating partial-disruption risk: A joint facility location and inventory model considering customers' preferences and the role of substitute products and backorder offers

机译:缓解部分中断的风险:考虑客户偏好以及替代产品和补货的作用的联合设施位置和库存模型

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This paper studies a joint facility location and inventory model from the viewpoint of partial-disruption risk i.e., when manufacturing facilities meet the demands of third-party distribution centers with a portion of their capacity, free from any disruptions while considering substitute products as a disruption risk mitigation strategy. We considered these third-party distribution centers as the customers of the manufacturing facilities. We used a multinomial logit model to rank-order the facilities according to customers' preferences. Then, a non-linear integer programming model was developed which attempted to assign a sequence of facilities to each customer based on their preferences while at the same time, minimizing the total supply-chain cost. We also considered customers' decisions for backorders while developing the model. Due to the NP-hard nature of the problem, we developed a particle swarm optimization based metaheuristic algorithm to solve the model. The efficiency of the modified particle swarm optimization (MPSO) was illustrated through computational tests and systematic comparison with the exact method, a hybrid meta-heuristic algorithm including tabu search (TS) and variable neighborhood search (VNS) from the literature, and its modified form (Modified TS-VNS). A numerical example was used to show the applicability of the model. Finally, we gained useful insight into the role of substitute products and customers' decisions for backorders through scenario-based analysis. We found that the total supply chain cost could increase in disruption scenarios when customers were more likely to refuse backorder offers. However, the cost-saving from producing a substitute for key products could be significant. (C) 2020 Elsevier Ltd. All rights reserved.
机译:本文从局部中断风险的角度研究联合设施选址和库存模型,即当制造设施满足第三方配送中心的部分容量需求时,不受任何干扰,而将替代产品视为中断风险缓解策略。我们将这些第三方分销中心视为制造工厂的客户。我们使用多项式logit模型根据客户的偏好对设施进行排序。然后,开发了一个非线性整数规划模型,该模型试图根据每个客户的偏好为他们分配一系列设施,同时最大程度地降低了供应链的总成本。在开发模型时,我们还考虑了客户的补货决定。由于问题的NP难性,我们开发了一种基于粒子群优化的元启发式算法来求解该模型。通过计算测试以及与精确方法的系统比较,文献中包括禁忌搜索(TS)和变量邻域搜索(VNS)的混合元启发式算法及其改进方法,说明了改进的粒子群优化(MPSO)的效率。表格(修改后的TS-VNS)。数值例子说明了该模型的适用性。最后,我们通过基于方案的分析,获得了对替代产品的作用以及客户对延期交货的决定的有用见解。我们发现,当客户更有可能拒绝补货时,在中断情况下总供应链成本可能会增加。但是,通过生产关键产品的替代品可以节省大量成本。 (C)2020 Elsevier Ltd.保留所有权利。

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