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Stochastic Dual Dynamic integer Programming for a multi-echelon lot-sizing problem with remanufacturing and lost sales

机译:随机双动整数整数规划,用于多梯队批量问题,用于再制造和损失销售

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We consider an uncapacitated 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 assume a stochastic environment, in which the input data of the optimization problem are subject to uncertainty. We consider a multi-stage stochastic integer programming approach relying on scenario trees to represent the uncertain information structure and propose a solution method based on an extension of the stochastic dual dynamic programming algorithm. Our results show that this approach can provide good quality solutions for large-size instances in a reasonable time and significantly outperforms the use of a stand-alone mathematical solver.
机译:我们在涉及三个生产梯队的再制造系统中考虑一个未加置的多梯度批量问题:拆卸,翻新和重新组装。我们寻求在多个时期地平线上规划该系统的生产活动。我们假设一个随机环境,其中优化问题的输入数据受到不确定性。我们考虑一种依赖于场景树的多级随机整数编程方法来表示不确定的信息结构,并提出基于随机双动脉编程算法的扩展来提出解决方法。我们的研究结果表明,这种方法可以在合理的时间内为大型实例提供良好的质量解决方案,并且显着优于使用独立数学求解器的使用。

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