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A Complex Design of the Integrated Forward-Reverse Logistics Network under Uncertainty

机译:不确定条件下的正反向物流集成网络的复杂设计

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Design of a logistics network in proper way provides a proper platform for efficient and effective supply chain management. This paper studies a multi-period, multi echelon and multi-product integrated forward-reverse logistics network under uncertainty. First, an efficient complex mixed-integer linear programming (MILP) model by considering some real-world assumptions is developed for the integrated logistics network design to avoid the sub-optimality caused by the separate design of the forward and reverse networks. Then, the stochastic counterpart of the proposed MILP model is used to measure the conditional value at risk (CVaR) criterion, as a risk measure, that can control the risk level of the proposed model. The computational results show the power of the proposed stochastic model with CVaR criteria in handling data uncertainty and controlling risk levels.
机译:以正确的方式设计物流网络可为高效且有效的供应链管理提供适当的平台。本文研究了不确定性下的多时期,多层次,多产品的正反向物流集成网络。首先,针对综合物流网络设计开发了一种有效的复杂混合整数线性规划(MILP)模型,该模型考虑了一些实际假设,从而避免了由正向和反向网络的单独设计引起的次优性。然后,所提出的MILP模型的随机对应物用于测量风险条件值(CVaR)准则,作为一种风险度量,可以控制所提出模型的风险水平。计算结果表明,所提出的具有CVaR标准的随机模型在处理数据不确定性和控制风险水平方面具有强大的功能。

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