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Supplier Selection and Order Allocation Under Disruption: Multi-Objective Evolutionary Algorithms

机译:中断下的供应商选择和订单分配:多​​目标进化算法

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Disruption is one of the critical issues that affect the performance and costs of supply chain management. The appropriate adjusting of supply chain disruptions is considered as a competitive privilege for companies. Hence, this paper aims to improve an optimization approach to select suppliers and allocate the proper quota of order to each one considering supplier disruption. A Multi-Objective Mixed Integer Linear Programming (MOMILP) is proposed model with five objective functions, minimize costs of the transaction and supplying, the percentage of delayed products, and the percentage of returned products, as well as maximize capabilities of orders tracking by customers. Strength Pareto Evolutionary Algorithm-II (SPEA-II) and Non-Dominated Sorting Genetic Algorithm-II (NSGA-II) are developed to settle this problem. The efficiency of the solution algorithms is investigated based on four criteria for eight computational experiments. The results indicate the SPEA-II algorithm provides better solutions in comparison with the NSGA-II algorithm.
机译:中断是影响供应链管理性能和成本的关键问题之一。适当调整供应链中断被视为公司的竞争特权。因此,本文旨在提高选择供应商的优化方法,并考虑供应商中断,为每个人分配适当的订单配额。提出了一种多目标混合整数线性编程(MOMILP),提出了具有五个目标功能的模型,最大限度地减少了交易的成本和供应的成本,延迟产品的百分比,返回产品的百分比,以及最大化客户的订单跟踪的能力最大化。强度帕累托进化算法-II(SPEA-II)和非主导的分类遗传算法-II(NSGA-II)以解决这个问题。根据八个计算实验的四个标准研究了解决方案算法的效率。结果表明,与NSGA-II算法相比,SPEA-II算法提供了更好的解决方案。

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