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Robust bi-level optimization for green opportunistic supply chain network design problem against uncertainty and environmental risk

机译:针对不确定性和环境风险的绿色机会供应链网络设计问题的鲁棒双层优化

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摘要

The main objective of this research is to introduce the concept of Green Opportunistic Supply Chain (GrOSC) and to design it in a lean and agile manufacturing setting under uncertain and risky environment. The model considers the uncertainties of the market-related information, i.e. the demand and transportation and shortage costs, under Vendor Managed Inventory (VMI) strategy. Addressing the retailer's risk aversion level through Conditional Value at Risk (CVaR) to deal with these uncertainties leads to a bi-level programming problem. The Karush-Kuhn-Tucker (KKT) conditions are adopted to transform the model into a single-level mixed integer linear programming problem. Since, the realization of the uncertain parameters is the only information available, a data-driven approach is employed to avoid distributional assumptions. The effectiveness of the model is finally demonstrated through a numerical example.
机译:这项研究的主要目的是介绍绿色机会供应链(GrOSC)的概念,并在不确定和风险环境下的精益和敏捷制造环境中进行设计。该模型考虑了供应商管理库存(VMI)策略下与市场相关的信息的不确定性,即需求,运输和短缺成本。通过条件风险价值(CVaR)解决零售商的风险规避水平以应对这些不确定性,会导致出现双层规划问题。采用Karush-Kuhn-Tucker(KKT)条件将模型转换为单级混合整数线性规划问题。由于不确定参数的实现是唯一可用的信息,因此采用数据驱动的方法来避免分布假设。最后通过一个数值例子证明了该模型的有效性。

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