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Integrating fuzzy goal programming and data envelopment analysis to incorporate preferred decision-maker targets in efficiency measurement

机译:集成模糊目标规划和数据包络分析,以效率测量合并首选决策者目标

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摘要

Data envelopment analysis (DEA) is a nonparametric frontier assessment method used to evaluate the relative efficiency of similar decision-making units (DMUs). This method provides benchmarking information regarding the removal of inefficiency. In conventional DEA models, the view of the decision maker (DM) is ignored and the performance of each DMU is solely determined by the observations retrieved. The current paper exploits the structural similarity existing between DEA and multiple objective programming to define a model that incorporates the preferences of DMs in the evaluation process of DMUs. Given the potential unfeasibility of the input and output targets selected by the DM, the model defines an interactive procedure that considers minimum and maximum acceptable objective levels. Given the feasible levels located closer to the targets selected by the DM, a program improving upon the feasible allocations is designed so that the suggested benchmark approximates the requirements fixed by the DM as much as possible. A real-life case study is included to illustrate the efficacy and applicability of the proposed hybrid procedure.
机译:数据包络分析(DEA)是一种非参数前沿评估方法,用于评估类似决策单元(DMUS)的相对效率。该方法提供关于拒绝低效率的基准信息。在传统的DEA模型中,忽略决策者(DM)的视图,并且每个DMU的性能仅通过检索的观察结果确定。目前纸张利用DEA和多个客观编程之间存在的结构相似性,以定义一种模型,该模型包含DMS在DMUS评估过程中的偏好。鉴于DM选择的输入和输出目标的潜在不可行,该模型定义了一种互动过程,其考虑最小和最大可接受的客观程度。鉴于靠近DM选择的目标的可行性水平,设计了改善可行分配的程序,以便建议的基准估计DM尽可能多地修复的要求。包括真实寿命研究,以说明所提出的混合过程的功效和适用性。

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