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Preserve the relative efficiency values: an inverse data envelopment analysis with imprecise data

机译:保留相对效率值:具有不精确数据的逆数据包络分析

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Data envelopment analysis (DEA) measures the relative efficiency of a set of decision-making units (DMUs). With the advent of DEA models, inverse DEA is applied to modify the inputs and outputs of DMUs without affecting their efficiency. InvDEA models are applied when the decision makers need to change the input-outputs of the DMUs to a certain level without affecting their efficiency. InvDEA models are extended when the input-output data are imprecise and available in the intervals form. However, regarding uncertainty, complete information about the input-output data is not available in many real world applications. To address this problem, this study deals with the InvDEA problem in an uncertain environment. Therefore, two multi-objective linear programming (MOLP) models are proposed to estimate the required upper/lower inputs, producing requested outputs and preserving the efficiency scores. The proposed models preserve the upper/lower efficiency scores of all considered DMUs. A numerical example illustrates the proposed methodology.
机译:数据包络分析(DEA)衡量一组决策单元(DMU)的相对效率。随着DEA模型的出现,逆DEA用于修改DMU的输入和输出而不会影响其效率。当决策者需要在不影响DMU效率的情况下将DMU的输入输出更改为一定水平时,可以使用InvDEA模型。当输入-输出数据不精确并且以间隔形式可用时,InvDEA模型将得到扩展。但是,关于不确定性,在许多实际应用中都没有有关输入输出数据的完整信息。为了解决这个问题,本研究处理了不确定环境中的InvDEA问题。因此,提出了两个多目标线性规划(MOLP)模型来估计所需的上/下输入,产生请求的输出并保留效率得分。提出的模型保留了所有考虑的DMU的上/下效率得分。数值例子说明了所提出的方法。

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