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A new approach for deriving fuzzy global priorities in fuzzy analytic network process

机译:模糊分析网络过程中导出模糊全局优先级的新方法

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This paper proposes a new approach for deriving fuzzy global priorities in fuzzy analytic network process. Due to the convergence problem in taking the limit of the fuzzy supermatrix, it is relatively difficult to generate fuzzy global priorities from fuzzy analytic network process. The presented methodology solves the convergence problem by producing a normalized fuzzy supermatrix and raising it to the limiting power based on a linear goal programming model. Consequently, the fuzzy global priorities can be extracted from the fuzzy limiting supermatrix, whose fuzzy column vectors are normalized and identical. The approach is applicable for triangular, interval and trapezoidal fuzzy cases. Finally, two examples are given. One illustrates the effectiveness of the proposed approach and the other demonstrates the use of the obtained fuzzy global priorities in reflecting the uncertainty of the order caused by fuzzy judgments of the expert.
机译:本文提出了一种在模糊分析网络过程中导出模糊全局优先级的新方法。由于在取模糊超矩阵的极限时存在收敛性问题,从模糊解析网络过程生成模糊全局优先级相对困难。所提出的方法通过产生归一化的模糊超级矩阵并将其提高到基于线性目标规划模型的极限功效来解决收敛问题。因此,可以从模糊极限超级矩阵中提取模糊全局优先级,该矩阵的模糊列向量已标准化且相同。该方法适用于三角形,区间和梯形模糊情况。最后,给出两个例子。一个说明了所提出方法的有效性,另一个说明了所获得的模糊全局优先级在反映专家的模糊判断所导致的顺序不确定性方面的用途。

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