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Cross efficiency evaluation of decision-making units using the maximum decisional efficiency principle

机译:利用最大决策效率原理的决策单位交叉效率评价

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This paper uses maximum decisional efficiency (MDE) principle to derive cross efficiency (CE) scores for input and output oriented frontier efficiency models. The MDE CE models are parametric models that derive their cross efficiencies by either maximizing log-likelihood (input-oriented models) or minimizing negative log-likelihood (output-oriented models). Using real-world and simulated datasets, we compare our MDE models with several competing CE models from the literature. Our results illustrate that the MDE models based CE scores have higher CE averages when inputs are independent or correlated with half-normal inefficiency distributions. We also find that MDE models provide model consensus scores that are highly consistent. When inputs are correlated and inefficiency distributions are exponential, the log-likelihood estimation procedures appear to suffer in performance when compared to data envelopment analysis models with secondary objectives.
机译:本文采用最大决策效率(MDE)原理来推导出输入和输出面向前沿效率模型的交叉效率(CE)分数。 MDE CE模型是参数模型,通过最大化日志似然(面向输入的模型)或最小化负对数似然(以输出导向的模型)来导出它们的跨效率。使用现实世界和模拟数据集,我们将我们的MDE模型与来自文献的几个竞争CE模型进行比较。我们的结果说明了基于MDE模型的CE得分在输入独立或与半正常低效分布的相关或相关时具有更高的CE平均值。我们还发现MDE模型提供了高度一致的模型共识分数。当输入相关并低少数分布是指数的,与具有次要目标的数据包络分析模型相比,日志似然估计程序似乎在性能中受到影响。

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