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首页> 外文期刊>International Journal of Applied Mathematics & Statistics >DEA Model of Random Fuzzy with Data of Skew-Normal Distribution
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DEA Model of Random Fuzzy with Data of Skew-Normal Distribution

机译:随机模糊的DEA模型与歪斜正态分布数据

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Data envelopment analysis (DEA) is a mathematical method to evaluate the performance of decision-making units (DMU). In the classic DEA theory, assume deterministic and precise values for the input and output observations; however, in the real world, the observed values of the inputs and outputs data are mainly fuzzy and random. In the present paper, the fuzzy data were assumed random with a skew-normal distribution, whereas previous works have been based on the assumption of data normality, which might not be true in practice. Therefore, the use of a normal distribution would result in an incorrect conclusion. In the present work, the random fuzzy DEA (Ra-Fu DEA) model were investigated in one state of possibility-probability in the presence of a skew - normal distribution with a fuzzy mean and a fuzzy threshold level. Finally, a set of numerical example is presented to demonstrate the efficacy of procedures and algorithms.
机译:数据包络分析(DEA)是评估决策单元(DMU)性能的数学方法。 在经典的DEA理论中,假设输入和输出观察的确定性和精确值; 然而,在现实世界中,观察到的输入和输出数据的值主要是模糊和随机。 在本文中,采用偏斜正态分布随机假设模糊数据,而以前的作品是基于数据正常性的假设,这在实践中可能不是真的。 因此,使用正常分布将导致结论不正确。 在本作本作中,在具有模糊平均值和模糊阈值水平的偏斜平均分布存在下,在一种可能性 - 概率的情况下研究随机模糊DEA(RA-FU DEA)模型。 最后,提出了一组数值示例以证明程序和算法的功效。

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