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A simulation-based decision support system for a multi-echelon inventory problem with service level constraints

机译:具有服务水平约束的多级库存问题的基于仿真的决策支持系统

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In this paper, we present a simulation-based decision support system for solving the multi-echelon constrained inventory problem. The goal is to determine the optimal setting of stocking levels to minimize the total inventory investment costs while satisfying the expected response time targets for each field depot. We derive new decision support algorithms to be applied in different scenarios, including small-sample and large-sample cases. The first case requires that the set of alternative solutions is known at the beginning of the experiment, and the number of evaluated solutions may depend on the simulation budget (i.e., the time available to solve the problem). In the second case, the alternative solutions are generated sequentially during the searching process, and we may terminate the algorithm when the specified sampling budget is exhausted. Empirical studies are conducted to compare the performance of the proposed algorithms with other conventional optimization approaches.
机译:在本文中,我们提出了一种基于仿真的决策支持系统,用于解决多级约束库存问题。目的是确定最佳的库存水平设置,以最大程度地降低总库存投资成本,同时满足每个现场仓库的预期响应时间目标。我们推导了新的决策支持算法,可将其应用于不同的场景,包括小样本和大样本案例。第一种情况要求在实验开始时就知道一组替代解决方案,并且评估解决方案的数量可能取决于模拟预算(即解决问题所需的时间)。在第二种情况下,替代解决方案是在搜索过程中顺序生成的,并且当指定的采样预算用尽时,我们可能会终止算法。进行了实证研究,以比较所提出算法与其他常规优化方法的性能。

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