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Analyzing fuzzy risk based on similarity measures between interval-valued fuzzy numbers

机译:基于区间值模糊数相似度的模糊风险分析

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摘要

In this paper, we present a new method for handling fuzzy risk analysis problems based on the proposed new similarity measure between interval-valued fuzzy numbers. First, we present a new similarity measure between interval-valued fuzzy numbers. It considers the degrees of closeness between interval-valued fuzzy numbers on theX-axis and the degrees of differences between the shapes of the interval-valued fuzzy numbers on the X-axis and the Y-axis, respectively. We also prove three properties of the proposed similarity measure. Then, we make an experiment to compare the experimental results of the proposed method with the existing similarity measures between interval-valued fuzzy numbers. The proposed method can overcome the drawbacks of the existing methods. Finally, based on the proposed similarity measure between interval-valued fuzzy numbers, we present a new fuzzy risk analysis algorithm for dealing with fuzzy risk analysis problems. Because the proposed method allows the evaluating values of sub-components to be represented by interval-valued fuzzy numbers, it is more flexible than Chen and Chen's method (2003).
机译:本文基于区间值模糊数之间的新相似性度量,提出了一种处理模糊风险分析问题的新方法。首先,我们提出了区间值模糊数之间的一种新的相似性度量。它分别考虑了X轴上的间隔值模糊数之间的接近程度以及X轴和Y轴上的间隔值模糊数的形状之间的差异程度。我们还证明了所提出的相似性度量的三个属性。然后,我们进行了一个实验,将所提方法的实验结果与区间值模糊数之间的现有相似性度量进行比较。所提出的方法可以克服现有方法的缺点。最后,基于提出的区间值模糊数之间的相似性度量,提出了一种新的模糊风险分析算法,用于处理模糊风险分析问题。由于所提出的方法允许用区间值模糊数表示子组件的评估值,因此它比Chen和Chen的方法(2003年)更灵活。

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