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Robust DEA under discrete uncertain data: A case study of Iranian electricity distribution companies

机译:离散不确定数据下的鲁棒DEa:伊朗配电公司案例研究

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摘要

Crisp input and output data are fundamentally indispensable in traditional data envelopment analysis (DEA). However, the real-world problems often deal with imprecise or ambiguous data. In this paper, we propose a novel robust data envelopment model (RDEA) to investigate the efficiencies of decision-making units (DMU) when there are discrete uncertain input and output data. The method is based upon the discrete robust optimization approaches proposed by Mulvey et al. (1995) that utilizes probable scenarios to capture the effect of ambiguous data in the case study. Our primary concern in this research is evaluating electricity distribution companies under uncertainty about input/output data. To illustrate the ability of proposed model, a numerical example of 38 Iranian electricity distribution companies is investigated. There are a large amount ambiguous data about these companies. Some electricity distribution companies may not report clear and real statistics to the government. Thus, it is needed to utilize a prominent approach to deal with this uncertainty. The results reveal that the RDEA model is suitable and reliable for target setting based on decision makers (DM's) preferences when there are uncertain input/output data.
机译:酥脆的输入和输出数据在传统数据包络分析(DEA)中是必不可少的。但是,现实世界中的问题通常涉及不精确或模棱两可的数据。在本文中,我们提出了一种新颖的鲁棒数据包络模型(RDEA),以研究存在离散不确定输入和输出数据时决策单元(DMU)的效率。该方法基于Mulvey等人提出的离散鲁棒优化方法。 (1995年),利用可能的场景来捕获案例研究中模棱两可的数据的影响。我们在这项研究中的主要关注点是在不确定输入/输出数据的情况下评估配电公司。为了说明所提出模型的能力,研究了一个38个伊朗配电公司的数值示例。有关这些公司的大量模糊数据。一些配电公司可能未向政府报告清晰,真实的统计数据。因此,需要采用一种突出的方法来处理这种不确定性。结果表明,当输入/输出数据不确定时,RDEA模型适合基于决策者(DM)偏好的目标设置。

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