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Data envelopment analysis of randomized ranks

机译:随机秩的数据包络分析

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Probabilities and odds, derived from vectors of ranks, are here compared as measures of efficiency of decision-making units (DMUs). These measures are computed with the goal of providing preliminary information before starting a Data Envelopment Analysis (DEA) or the application of any other evaluation or composition of preferences methodology. Preferences, quality and productivity evaluations are usually measured with errors or subject to influence of other random disturbances. Reducing evaluations to ranks and treating the ranks as estimates of location parameters of random variables, we are able to compute the probability of each DMU being classified as the best according to the consumption of each input and the production of each output. Employing the probabilities of being the best as efficiency measures, we stretch distances between the most efficient units. We combine these partial probabilities in a global efficiency score determined in terms of proximity to the efficiency frontier.
机译:从等级向量得出的概率和赔率在此进行比较,作为决策单位(DMU)效率的度量。计算这些度量的目的是在开始数据包络分析(DEA)或应用任何其他评估或偏好方法的组合之前提供初步信息。偏好,质量和生产率评估通常会出现错误,或者会受到其他随机干扰的影响。减少对等级的评估并将等级作为随机变量的位置参数的估计值,我们能够根据每个输入的消耗和每个输出的产生来计算将每个DMU分类为最佳的概率。利用效率最高的可能性作为衡量效率的指标,我们拉开了效率最高的单位之间的距离。我们将这些部分概率结合到根据效率前沿确定的全局效率得分中。

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