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Characteristic evaluation for groups in data envelopment analysis and its application

机译:数据包络分析中的群体特征评价及其应用

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To clarify the usage of Multi-Frontier DEA (Data Envelopment Analysis), this paper presents how to interpret the result computationally. As first challenge, the proposed method is prepared for two groups, and indicates how to characterize each group. The analyzing process consists of two steps: (1) Classify DMU (Decision Making Unit) into one of five categories and (2) Identify representative DMU in a group and find the characteristics in virtual inputs and outputs. Applying this method to two-stage bank model with six attributes, this paper also characterizes the difference of bank efficiency between mega bank group and small bank group.
机译:为了阐明多边界DEA(数据包络分析)的用法,本文提出了如何以计算方式解释结果的方法。作为第一个挑战,建议的方法适用于两个小组,并指出如何表征每个小组。分析过程包括两个步骤:(1)将DMU(决策制定单位)分为五个类别之一;(2)在一个组中识别代表性的DMU,并在虚拟输入和输出中找到特征。将这种方法应用于具有六个属性的两阶段银行模型中,还描述了大型银行集团和小型银行集团之间银行效率的差异。

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