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A Decision Tree-Based Method for Selection of Input-Output Factors in DEA

机译:基于决策树的DEA输入输出因子选择方法

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We propose a method for selection of input-output factors in DEA. It is designed to select better combinations of input-output factors that are well suited for evaluating substantial performance of DMUs. Several selected DEA models with different combinations of input-output factors are evaluated, and the relationship between the computed efficiency scores and a single performance criterion of DMUs is investigated using decision tree. Based on the results of decision tree analysis, a relatively better DEA model can be chosen, which is expected to effectively assess the true performance of DMUs. We illustrate the effectiveness of the proposed method by applying it to the efficiency evaluation of 101 companies in steel and metal industry listed on the Korean stock market.
机译:我们提出了一种选择DEA中输入输出因子的方法。它旨在选择输入输出因子的更好组合,非常适合评估DMU的实质性能。评估了几种选择的具有不同输入输出因子组合的DEA模型,并使用决策树研究了计算出的效率得分与DMU的单个性能标准之间的关系。根据决策树分析的结果,可以选择相对更好的DEA模型,该模型有望有效评估DMU的真实性能。通过将其应用于在韩国股票市场上市的钢铁和金属行业的101家公司的效率评估,我们说明了该方法的有效性。

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