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Design of close-loop supply chain network under uncertainty using hybrid genetic algorithm: A fuzzy and chance-constrained programming model

机译:基于混合遗传算法的不确定性闭环供应链网络设计:模糊和机会约束规划模型

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摘要

The design of closed-loop supply chain network is one of the important issues in supply chain management. This research proposes a multi-period, multi-product, multi-echelon closed-loop supply chain network design model under uncertainty. Because of its complexity, a solution framework which integrates Monte Carlo simulation embedded hybrid genetic algorithm, fuzzy programming and chance-constrained programming jointly deal with the issue. A fuzzy programming and chance-constrained programming approach take up the uncertainty issue. Monte Carlo simulation embedded hybrid genetic algorithm is employed to determine the configuration of CLSC network. Parameters of GA are chosen to balance two aims. One aim is that the best value is global optimum, that is, maximum profit. The other aim is that the computational time is as short as possible. Non-parametric test confirms the advantage of hybrid GA. Then, the validity of Monte Carlo simulation embedded hybrid genetic algorithm is verified. The impacts of uncertainty in disposed rates, demands, and capacities on the overall profit of CLSC network are studied through sensitivity analysis. The proposed model is effective in designing CLSC network under uncertain environment.
机译:闭环供应链网络的设计是供应链管理中的重要问题之一。该研究提出了不确定性下的多周期,多产品,多层次的闭环供应链网络设计模型。由于其复杂性,将蒙特卡洛模拟嵌入的混合遗传算法,模糊规划和机会受限规划结合在一起的解决方案框架可以解决该问题。模糊规划和机会约束规划方法解决了不确定性问题。采用蒙特卡罗仿真嵌入式混合遗传算法确定CLSC网络的配置。选择遗传算法的参数以平衡两个目标。一个目标是,最佳价值是全球最优,即最大利润。另一个目的是计算时间尽可能短。非参数测试证实了混合遗传算法的优势。然后,验证了蒙特卡罗模拟嵌入式混合遗传算法的有效性。通过敏感性分析研究了处置费率,需求和能力的不确定性对CLSC网络整体利润的影响。该模型对不确定环境下的CLSC网络设计有效。

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