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A variant of radial measure capable of dealing with negative inputs and outputs in data envelopment analysis

机译:径向测量的一种变体,能够处理数据包络分析中的负输入和输出

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摘要

Data envelopment analysis (DEA) is a linear programming methodology to evaluate the relative technical efficiency for each member of a set of peer decision making units (DMUs) with multiple inputs and multiple outputs. It has been widely used to measure performance in many areas. A weakness of the traditional DEA model is that it cannot deal with negative input or output values. There have been many studies exploring this issue, and various approaches have been proposed. In this paper, we develop a variant of the traditional radial model whereby original values are replaced with absolute values as the basement to quantify the proportion of improvements to reach the frontier. The new radial measure is units invariant and can deal with all cases of the presence of negative data. In addition, the VRM model preserves the property of proportionate improvement of a traditional radial model, and provides the exact same results in the cases that the traditional radial model can deal with. Examples show the advantages of the new approach.
机译:数据包络分析(DEA)是一种线性编程方法,用于评估具有多个输入和多个输出的一组对等决策单元(DMU)中每个成员的相对技术效率。它已被广泛用于衡量许多领域的绩效。传统DEA模型的一个缺点是它不能处理负的输入或输出值。已经有许多研究探索了这个问题,并且已经提出了各种方法。在本文中,我们开发了传统径向模型的一种变体,其中原始值被替换为绝对值作为基础,以量化达到前沿的改进比例。新的径向度量是单位不变的,可以处理所有存在负数据的情况。此外,VRM模型保留了传统径向模型按比例改进的特性,并且在传统径向模型可以处理的情况下提供了完全相同的结果。实例显示了新方法的优点。

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