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Developing an integrated decision making model in supply chain under demand uncertainty using genetic algorithm and network data envelopment analysis

机译:利用遗传算法和网络数据包络分析建立需求不确定条件下的供应链集成决策模型

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摘要

Nowadays, organisations have recognised the importance of integrated decision making to improve supply chain performance. Since organisations cooperate with each other as a network, any ineffectiveness and inefficiency will be getting more highlighted and integration has become more important. This research describes a four echelon supply chain including supplier, producer, distributor and customer levels. The considered problem is a location routing inventory problem with uncertain demand. To validate integrated mathematical model several problems have been generated and solved using GAMS software. Results show solving time increases exponentially as problems dimension increases, which represents problem's complexity. Therefore, a heuristic genetic algorithm base on NDEA selection method is proposed. To evaluate proposed algorithm's effectiveness, generated problems have been solved by proposed method and three famous selection methods. Obtained results are compared by Wilcoxon test which represents the proposed algorithm's effectiveness.
机译:如今,组织已经认识到综合决策对于改善供应链绩效的重要性。由于组织之间通过网络相互协作,因此任何无效性和低效性都会更加突出,并且集成也变得越来越重要。这项研究描述了四个梯队供应链,包括供应商,生产商,分销商和客户级别。所考虑的问题是需求不确定的位置路由库存问题。为了验证集成数学模型,使用GAMS软件已经产生并解决了一些问题。结果表明,解决时间随着问题维数的增加而呈指数增长,这代表了问题的复杂性。因此,提出了一种基于NDEA选择方法的启发式遗传算法。为了评估所提出算法的有效性,通过提出的方法和三种著名的选择方法解决了产生的问题。通过Wilcoxon检验比较得到的结果,该结果代表了所提算法的有效性。

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