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Improving the Decision-Making of Reverse Logistics Network Design Part I: A MILP Model Under Stochastic Environment

机译:提高逆向物流网络设计的决策部分I:随机环境下的MILP模型

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The study of the network design problems related to reverse supply chain and reverse logistics is of great interest for both academicians and practitioners due to its important role for a sustainable society. However, reverse logistics network design is a complex decision-making problem that involves several interactive factors and faces many uncertainties. Thus, in order to improve the reverse logistics network design, this paper proposes a new optimization model under stochastic environment and an improved solution method for network design of a multi-stage multi-product reveres supply chain. The study is presented in a series of two parts. Part I presents the relevant literature and formulates a stochastic mixed integer linear programming (MILP) for improving the decision-making of the reverse logistics network design. Part II improves the solution method for the proposed stochastic programming and illustrates the application through a numerical experimentation.
机译:由于其可持续社会的重要作用,对逆向供应链和逆向物流相关的网络设计问题对院士和从业者有关的研究。然而,反向物流网络设计是一个复杂的决策问题,涉及多个互动因素并面临许多不确定性。因此,为了改善逆向物流网络设计,本文提出了一种在随机环境下的新优化模型及改进的多级多产品网络设计的改进解决方法。该研究呈现在两部分的一系列中。第一部分呈现了相关文献,并制定了一种随机混合整数线性规划(MILP),用于改善反向物流网络设计的决策。第二部分改善了提出的随机编程的解决方案方法,并通过数值实验说明了应用。

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