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A multi-criteria ratio-based approach for two-stage data envelopment analysis

机译:基于多标准比率的两级数据包络分析方法

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摘要

Data Envelopment Analysis (DEA) is a well-known technique for assessing efficiency levels of decision making units (DMUs). Very often, available data may be expressed as ratios and, in such cases, traditional DEA models cannot be applied as long as biased efficiency results are produced, yielding the issues of efficiency underestimation and pseudo-inefficiency. In this paper, a novel two-stage MCDEA-R model to handle ratio data is developed observing three distinct assumptions - black-box, free-link, and fixed-link - offering a multi-criteria decision making (MCDM) perspective to the efficiency assessment problem in productive networks. While the proposed models are tested by evaluating the efficiency levels of a set of 30 bank branches in Iran, their distinctive features are highlighted in terms of previous literature to model ratio data under network structures. Precisely, there were not only gains in terms of mitigating pseudo-inefficiency and lack of discrimination power of weights issues, but there were also actual gains in terms of efficiency reliability as measured by information entropy. (c) 2020 Elsevier Ltd. All rights reserved.
机译:数据包络分析(DEA)是用于评估决策单位(DMUS)效率水平的众所周知的技术。通常,可用数据可以表示为比例,并且在这种情况下,只要产生偏置效率结果,就不能应用传统的DEA模型,从而产生效率低估和伪低效的问题。在本文中,开发了一种用于处理比例数据的新型两级MCDEA-R模型,观察三个不同的假设 - 黑盒,自由链接和固定链路 - 提供多标准的决策(MCDM)视角生产网络中的效率评估问题。虽然通过评估伊朗的一组30个银行分支机构的效率水平来测试所提出的模型,但它们的独特特征是以先前的文献来模拟网络结构的模拟数据。精确地,在减轻伪低效和权重问题缺乏歧视力方面,不仅有所增加,而且通过信息熵测量的效率可靠性也存在实际提升。 (c)2020 elestvier有限公司保留所有权利。

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