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Unbalanced supply chain design using the analytic network process and a hybrid heuristic-based algorithm with balance modulating mechanism

机译:基于分析网络过程的非平衡供应链设计和基于混合启发式算法的平衡调节机制

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摘要

In this study, an optimisation mathematical model is developed for presenting the supply chain design problem which is based on a single-product and multi-echelon unbalanced system, and considering four criteria, including cost, quality, delivery timeand partner relationship management (PRM), as well as decision factors such as quantity discount and capacity limits. To extract critical factors of PRM evaluation and estimate relative weight among the criteria, the analytic network process (ANP) is utilised. In addition, we propose a heuristic-based approach, called GP-TBM, based on a hybrid of the genetic algorithm (GA) and particle swarm optimisation (PSO) algorithm by introducing the balance modulating (BM) mechanism to solving the mathematical model to find the optimal supply chain network pattern. In the GP-TBM, the parameters are designed by the Taguchi method. Finally, a case of a {4-3-3-3} supply chain network structure is used to demonstrate the effectiveness of the proposed approach, and GP-TBM compared with standard PSO and GA. The empirical analysis results demonstrate GP-TBM is superior to standard PSO and GA in the proposed supply chain planning problems.
机译:在这项研究中,开发了一个优化数学模型来提出基于单产品和多级不平衡系统的供应链设计问题,并考虑了四个标准,包括成本,质量,交货时间和合作伙伴关系管理(PRM)以及决策因素,例如数量折扣和容量限制。为了提取PRM评估的关键因素并评估标准之间的相对权重,使用了分析网络过程(ANP)。此外,我们通过引入平衡调制(BM)机制来求解数学模型,提出了一种基于启发式的方法,称为GP-TBM,它是遗传算法(GA)和粒子群优化(PSO)算法的混合体。找到最佳的供应链网络模式。在GP-TBM中,参数是通过Taguchi方法设计的。最后,以一个{4-3-3-3}供应链网络结构为例来证明所提出方法的有效性,以及与标准PSO和GA相比GP-TBM的有效性。实证分析结果表明,在建议的供应链计划问题中,GP-TBM优于标准PSO和GA。

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