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首页> 外文期刊>Journal of Cleaner Production >A robust fuzzy possibilistic programming for a new network GP-DEA model to evaluate sustainable supply chains
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A robust fuzzy possibilistic programming for a new network GP-DEA model to evaluate sustainable supply chains

机译:用于评估可持续供应链的新网络GP-DEA模型的鲁棒模糊可能性编程

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This paper proposes a hybrid goal programming-data envelopment analysis (GP-DEA) model in a network structure to present improvement solutions and rank units of a supply chain. The improvement solutions are presented for all efficient and inefficient units based on experts' requirements. Therefore, the goals are considered as fuzzy values. To deal with uncertainty, a suitable fuzzy possibilistic approach is employed. Given robust optimization approach, the units of the supply chain are ranked based on penalties of deviations from goals as feasibility robustness and also the average and standard deviation of deviations as optimality robustness. One advantage of the proposed model is that it can determine balancing values and improvement solutions for flows among the units of a supply chain which have dual-roles factors so that the deviations from their goals are minimized. The proposed robust network GP-DEA model is run in a case study. The outcome of this paper can be used to evaluate and rank all types of supply chains with different network structures. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文提出了一种在网络结构中的混合目标规划-数据包络分析(GP-DEA)模型,以提出改进解决方案和对供应链的等级进行排序。根据专家的要求,为所有高效和低效率的单位提供了改进解决方案。因此,目标被视为模糊值。为了处理不确定性,采用了合适的模糊可能性方法。给定稳健的优化方法,基于偏离目标的惩罚作为可行性稳健性,以及偏差的平均和标准偏差作为最优性稳健性对供应链的各个单元进行排名。提出的模型的一个优点是,它可以为具有双角色因素的供应链各单位之间的流动确定平衡值和改进解决方案,从而将与目标的偏差最小化。建议的健壮网络GP-DEA模型在案例研究中运行。本文的结果可用于评估和排序具有不同网络结构的所有类型的供应链。 (C)2017 Elsevier Ltd.保留所有权利。

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