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GANGLESS CROSS-EVALUATION IN DEA: AN APPLICATION TO STOCK SELECTION

机译:DEA中无关联的交叉评估:在股票选择中的应用

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This paper discusses the impact of ganging decision making units (DMUs) on the cross-efficiency evaluation in data envelopment analysis (DEA). A group of DMUs are said to be ganging-together if the minimum and the maximum cross-efficiency scores they give to all other DMUs are identical. This study demonstrates that the ganging phenomenon can significantly influence the cross-efficiency evaluation in favour of some DMUs. To overcome this shortcoming, we propose a gangless cross-efficiency evaluation approach. The suggested method reduces the effect of ganging and generates a more diversified list of top performing units. An application to the Tehran stock market is used to show the benefits of gangless cross-evaluation.
机译:本文讨论了联合决策单元(DMU)对数据包络分析(DEA)中交叉效率评估的影响。如果一组DMU对所有其他DMU给出的最小和最大交叉效率得分相同,则称它们在一起。这项研究表明,联合现象可以显着影响交叉效率评估,有利于某些DMU。为了克服这一缺点,我们提出了一种无帮的交叉效率评估方法。所建议的方法减少了组合的影响,并生成了性能最高的单元的更多样化的列表。德黑兰股票市场的一个应用程序被用来展示无帮派交叉评估的好处。

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