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A FUZZY DATA ENVELOPMENT ANALYSIS FOR CLUSTERING OPERATING UNITS WITH IMPRECISE DATA

机译:具有不精确数据的集群操作单元的模糊数据包络分析

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摘要

Data envelopment analysis (DEA) is a non-parametric method for measuring the efficiency of peer operating units that employ multiple inputs to produce multiple outputs. Several DEA methods have been proposed for clustering operating units. However, to the best of our knowledge, the existing methods in the literature do not simultaneously consider the priority between the clusters (classes) and the priority between the operating units in each cluster. Moreover, while crisp input and output data are indispensable in traditional DEA, real-world production processes may involve imprecise or ambiguous input and output data. Fuzzy set theory has been widely used to formalize and represent the impreciseness and ambiguity inherent in human decision-making. In this paper, we propose a new fuzzy DEA method for clustering operating units in a fuzzy environment by considering the priority between the clusters and the priority between the operating units in each cluster simultaneously. A numerical example and a case study for the Jet Ski purchasing decision by the Florida Border Patrol are presented to illustrate the efficacy and the applicability of the proposed method.
机译:数据包络分析(DEA)是一种非参数方法,用于测量使用多个输入产生多个输出的对等操作单元的效率。已经提出了几种DEA方法来对操作单元进行聚类。但是,据我们所知,文献中的现有方法并未同时考虑群集(类)之间的优先级以及每个群集中操作单元之间的优先级。而且,尽管在传统的DEA中必不可少的输入和输出数据,但实际的生产过程可能涉及不精确或模棱两可的输入和输出数据。模糊集理论已被广泛用于形式化和表示人类决策固有的不精确性和歧义性。在本文中,我们提出了一种新的模糊DEA方法,该方法通过考虑群集之间的优先级和同时在每个群集中的操作单元之间的优先级来对模糊环境中的操作单元进行群集。数值例子和佛罗里达边防巡逻队购买摩托艇决定的案例研究说明了所提方法的有效性和适用性。

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