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Modeling fuzzy data envelopment analysis by parametric programming method

机译:用参数规划法对模糊数据包络分析进行建模

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Data envelopment analysis (DEA) is a methodology for measuring the relative efficiency of decision making units (DMUs) consuming the same types of inputs and producing the same types of outputs. This paper studies the DEA models with type-2 data variations. In order to deal with the existed type-2 fuzz-iness, we propose the mean reduction methods for type-2 fuzzy variables. Based on the mean reductions of the type-2 fuzzy inputs and outputs, we formulate a new class of fuzzy generalized expectation DEA models. When the inputs and outputs are mutually independent type-2 triangular fuzzy variables, we discuss the equivalent parametric forms for the constraints and the generalized expectation objective, where the parameters characterize the degree of uncertainty of the type-2 fuzzy coefficients so that the information cannot be lost via our reduction method. For any given parameters, the proposed model becomes nonlinear programming, which can be solved by standard optimization solvers. To illustrate the modeling idea and the efficiency of the proposed DEA model, we provide one numerical example.
机译:数据包络分析(DEA)是一种方法,用于测量使用相同类型的输入并产生相同类型的输出的决策单位(DMU)的相对效率。本文研究了具有2类数据变化的DEA模型。为了处理现有的2型模糊性,我们提出了2型模糊变量的均值约简方法。基于第二类模糊输入和输出的平均约简,我们建立了一类新的模糊广义期望DEA模型。当输入和输出是相互独立的2型三角模糊变量时,我们讨论约束的等价参数形式和广义期望目标,其中参数表征2型模糊系数的不确定度,因此信息无法通过我们的归约方法迷失了。对于任何给定的参数,建议的模型都变为非线性规划,可以通过标准优化求解器求解。为了说明所提出的DEA模型的建模思想和效率,我们提供了一个数值示例。

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