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A Fully Fuzzified Data Envelopment Analysis Model

机译:完全模糊化的数据包络分析模型

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摘要

In the conventional data envelopment analysis (DEA), all the data assumes the form of crisp numerical values. However, the observed values of the input and output data in real-world problems are sometimes imprecise or vague. Some researchers have proposed various fuzzy methods for dealing with the imprecise and ambiguous data in DEA by constructing linear programming (LP) models with 'partial' fuzzy parameters. The main purpose of this study is to evaluate the performance of a set of decision making units (DMUs) in a fully fuzzified environment. We propose a novel fully fuzzified DEA (FFDEA) model by utilising a fully fuzzified LP (FFLP) model, where all decision parameters and variables are fuzzy numbers. The contribution of this paper is threefold: first, we consider ambiguous, uncertain and imprecise input and output data in DEA; second, we address the gap in the fuzzy DEA literature for solutions to fully fuzzified problems; and third, we present a numerical example to demonstrate the applicability and efficacy of the proposed model
机译:在常规数据包络分析(DEA)中,所有数据均采用清晰数值的形式。但是,实际问题中输入和输出数据的观测值有时不精确或含糊。一些研究人员通过构造具有“部分”模糊参数的线性规划(LP)模型,提出了各种模糊方法来处理DEA中的不精确和不明确的数据。这项研究的主要目的是评估在完全模糊的环境中一组决策单元(DMU)的性能。通过利用完全模糊化的LP(FFLP)模型,我们提出了一种新颖的完全模糊化的DEA(FFDEA)模型,其中所有决策参数和变量均为模糊数。本文的贡献有三点:第一,我们考虑DEA中输入,输出数据的模棱两可,不确定和不精确;其次,我们解决了模糊DEA文献中对于完全模糊化问题的解决方案的空白。第三,我们提供一个数值示例来证明所提出模型的适用性和有效性

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