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A robust optimization approach to closed-loop supply chain network design under uncertainty

机译:不确定条件下闭环供应链网络设计的鲁棒优化方法

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摘要

The concern about significant changes in the business environment (such as customer demands and transportation costs) has spurred an interest in designing scalable and robust supply chains. This paper proposes a robust optimization model for handling the inherent uncertainty of input data in a closed-loop supply chain network design problem. First, a deterministic mixed-integer linear programming model is developed for designing a closed-loop supply chain network. Then, the robust counterpart of the proposed mixed-integer linear programming model is presented by using the recent extensions in robust optimization theory. Finally, to assess the robustness of the solutions obtained by the novel robust optimization model, they are compared to those generated by the deterministic mixed-integer linear programming model in a number of realizations under different test problems.
机译:人们对商业环境中的重大变化(例如客户需求和运输成本)的担忧激发了人们对设计可扩展且强大的供应链的兴趣。本文提出了一个鲁棒的优化模型,用于处理闭环供应链网络设计问题中输入数据的固有不确定性。首先,建立了确定性的混合整数线性规划模型,用于设计闭环供应链网络。然后,利用鲁棒性优化理论中的最新扩展,提出了所提出的混合整数线性规划模型的鲁棒性。最后,为了评估由新颖的鲁棒优化模型获得的解决方案的鲁棒性,将它们与确定性混合整数线性规划模型生成的解决方案在不同测试问题下的许多实现中进行比较。

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