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Determination of Weights for the Ultimate Cross Efficiency: A Use of Principal Component Analysis Technique

机译:确定最终交叉效率的权重:使用主成分分析技术

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摘要

Data Envelopment Analysis (DEA) has becoming more and more important in evaluating the performance of homogenous Decision Making Units (DMUs). Cross efficiency evaluation method, a DEA extension technique, can be utilized to identify efficient DMUs and to rank DMUs in a peer appraisal mode, instead of a pure self-evaluation of traditional DEA models. Traditionally, the ultimate cross efficiency is determined based on the average assumption. However it cannot ensure this result contains the most information of the cross-efficiency matrix (CEM). In the current paper, we use principal component analysis (PCA) to determine the ultimate cross-efficiency of each DMU and then rank them. Compared with the tradition average cross efficiency evaluation method, the method proposed in this paper can contain the most of the information of CEM. Finally, an empirical example is illustrated to examine the validity of the proposed method.
机译:数据包络分析(DEA)在评估同质决策单元(DMU)的性能中变得越来越重要。可以使用交叉效率评估方法(一种DEA扩展技术)来识别有效的DMU,并在同级评估模式中对DMU进行排名,而不是使用传统的DEA模型进行纯自我评估。传统上,最终交叉效率是根据平均假设确定的。但是,它不能确保此结果包含交叉效率矩阵(CEM)的最多信息。在本文中,我们使用主成分分析(PCA)确定每个DMU的最终交叉效率,然后对其进行排名。与传统的平均交叉效率评估方法相比,本文提出的方法可以包含大多数CEM信息。最后,通过一个实例验证了所提方法的有效性。

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