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Data envelopment analysis models with ratio data: A revisit

机译:具有比率数据的数据包络分析模型:回顾

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摘要

The performance evaluation of for-profit and not-for-profit organisations is a unique tool to support the continuous improvement of processes. Data envelopment analysis (DEA) is literally known as an impeccable technique for efficiency measurement. However, the lack of the ability to attend to ratio measures is an ongoing challenge in DEA. The convexity axiom embedded in standard DEA models cannot be fully satisfied where the dataset includes ratio measures and the results obtained from such models may not be correct and reliable. There is a typical approach to deal with the problem of ratio measures in DEA, in particular when numerators and denominators of ratio data are available. In this paper, we show that the current solutions may also fail to preserve the principal properties of DEA as well as to instigate some other flaws. We also make modifications to explicitly overcome the flaws and measure the performance of a set of operating units for the input- and output orientations regardless of assumed technology. Finally, a case study in the education sector is presented to illustrate the strengths and limitations of the proposed approach.
机译:营利性组织和非营利性组织的绩效评估是支持流程不断改进的独特工具。数据包络分析(DEA)实际上是一种效率测量的完美技术。但是,缺乏参与比例衡量的能力是DEA中的一个持续挑战。如果数据集包含比率度量,并且从此类模型获得的结果可能不正确和可靠,则无法完全满足标准DEA模型中嵌入的凸公理。有一种典型的方法可以解决DEA中的比率度量问题,尤其是当比率数据的分子和分母可用时。在本文中,我们表明,当前的解决方案也可能无法保留DEA的主要特性,并引发其他一些缺陷。我们还进行了修改,以明确克服这些缺陷,并在不考虑采用任何假定技术的情况下,针对输入和输出方向测量一组操作单元的性能。最后,在教育部门进行了案例研究,以说明该方法的优点和局限性。

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