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A new DEA common-weight multi-criteria decision-making approach for technology selection

机译:技术选择的新DEA常用多标准决策方法

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This paper addresses an advanced manufacturing technology selection problem by proposing a new common-weight multi-criteria decision-making (MCDM) approach in the evaluation framework of data envelopment analysis (DEA). We improve existing technology selection models by giving a new mathematical formulation to simplify the calculation process and to ensure its use in more general situations with multiple inputs and multiple outputs. Further, an algorithm is provided to solve the proposed model based on mixed-integer linear programming and dichotomy. Compared with previous approaches for technology selection, our approach brings new contributions. First, it guarantees that only one decision-making unit (DMU) (referring to a technology) can be evaluated as efficient and selected as the best performer while maximising the minimum efficiency among all the DMUs. Second, the number of mixed-integer linear programs to solve is independent of the number of candidates. In addition, it guarantees the uniqueness of the final optimal set of common weights. Two benchmark instances are used to compare the proposed approach with existing ones. A computational experiment with randomly generated instances is further proceeded to show that the proposed approach is more suitable for situations with large datasets.
机译:本文通过提出数据包络分析评估框架(DEA)中的新常量多标准决策(MCDM)方法来解决先进的制造技术选择问题。我们通过提供新的数学制定来改进现有技术选择模型来简化计算过程,并确保其在具有多个输入和多个输出的更一般情况下使用。此外,提供了一种算法来解决基于混合整数线性规划和二分法的所提出的模型。与先前的技术选择方法相比,我们的方法带来了新的贡献。首先,它可以保证只能评估一个决策单位(DMU)(DMU)(参考技术),可以评估为高效并选择为最佳表现者,同时最大化所有DMU中的最小效率。其次,用于解决的混合整数线性程序的数量与候选人的数量无关。此外,它保证了最终最佳的共同重量的独特性。两个基准实例用于将所提出的方法与现有方法进行比较。进一步进一步进行了随机产生的实例的计算实验,以表明所提出的方法更适合于大型数据集的情况。

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