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A multi-stage stochastic integer programming approach for a multi-echelon lot-sizing problem with returns and lost sales

机译:具有退货和销售损失的多级批量问题的多阶段随机整数规划方法

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We consider an uncapacitated multi-item multi-echelon lot-sizing problem within a remanufacturing system involving three production echelons: disassembly, refurbishing and reassembly. We seek to plan the production activities on this system over a multi-period horizon. We consider a stochastic environment, in which the input data of the optimization problem are subject to uncertainty. We propose a multi-stage stochastic integer programming approach relying on scenario trees to represent the uncertain information structure and develop a branch-and-cut algorithm in order to solve the resulting mixed-integer linear program to optimality. This algorithm relies on a new set of tree inequalities obtained by combining valid inequalities previously known for each individual scenario of the scenario tree. These inequalities are used within a cutting-plane generation procedure based on a heuristic resolution of the corresponding separation problem. Computational experiments carried out on randomly generated instances show that the proposed branch-and-cut algorithm performs well as compared to the use of a stand-alone mathematical solver. Finally, rolling horizon simulations are carried out to assess the practical performance of the multi-stage stochastic planning model with respect to a deterministic model and a two-stage stochastic planning model. (C) 2019 Elsevier Ltd. All rights reserved.
机译:我们在一个包含三个生产梯队的再制造系统中考虑了一个能力不强的多项目多梯级批量问题,这三个生产梯队是:拆卸,翻新和重新装配。我们试图跨多个时期计划该系统上的生产活动。我们考虑一个随机环境,在该环境中,优化问题的输入数据易受不确定性的影响。我们提出了一种基于场景树来表示不确定信息结构的多阶段随机整数规划方法,并提出了一种分枝算法,以解决由此产生的混合整数线性程序的最优性。该算法依赖于一组新的树不等式,这些树不等式是通过组合先前对于方案树的每个单独方案已知的有效不等式获得的。这些不等式是在基于对应分离问题的启发式解决方案的切割平面生成过程中使用的。在随机生成的实例上进行的计算实验表明,与使用独立的数学求解器相比,所提出的分支剪切算法表现良好。最后,进行滚动水平模拟,以评估确定性模型和两阶段随机计划模型的多阶段随机计划模型的实际性能。 (C)2019 Elsevier Ltd.保留所有权利。

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