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Distance and similarity measures of Pythagorean fuzzy sets based on the Hausdorff metric with application to fuzzy TOPSIS

机译:基于Hausdorff度量的勾股模糊集的距离和相似度量及其在模糊TOPSIS中的应用。

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摘要

Pythagorean fuzzy sets (PFSs) were proposed by Yager in 2013 to treat imprecise and vague information in daily life more rigorously and efficiently with higher precision than intuitionistic fuzzy sets. In this paper, we construct new distance and similarity measures of PFSs based on the Hausdorff metric. We first develop a method to calculate a distance between PFSs based on the Hasudorff metric, along with proving several properties and theorems. We then consider a generalization of other distance measures, such as the Hamming distance, the Euclidean distance, and their normalized versions. On the basis of the proposed distances for PFSs, we give new similarity measures to compute the similarity degree of PFSs. Some examples related to pattern recognition and linguistic variables are used to validate the proposed distance and similarity measures. Finally, we apply the proposed methods to multicriteria decision-making by constructing a Pythagorean fuzzy Technique for Order Preference by Similarity to an Ideal Solution and then present a practical example to address an important issue related to social sector. Numerical results indicate that the proposed methods are reasonable and applicable and also that they are well suited in pattern recognition, linguistic variables, and multicriteria decision-making with PFSs.
机译:勾股模糊集(PFS)是Yager在2013年提出的,它比直觉模糊集更精确,更有效地处理日常生活中不精确和模糊的信息。在本文中,我们基于Hausdorff度量构建了新的PFS距离和相似性度量。我们首先开发一种基于Hasudorff度量来计算PFS之间距离的方法,并证明一些性质和定理。然后,我们考虑其他距离度量的一般化,例如汉明距离,欧几里得距离及其归一化版本。在提出的PFS距离的基础上,我们给出了新的相似性度量来计算PFS的相似度。一些与模式识别和语言变量有关的示例用于验证所提出的距离和相似性度量。最后,我们通过构造与理想解决方案相似的顺序偏好的毕达哥拉斯模糊技术,将提出的方法应用于多准则决策,然后提出了解决与社会部门相关的重要问题的实际示例。数值结果表明,所提出的方法是合理的,适用的,并且非常适合于模式识别,语言变量和使用PFS进行多准则决策。

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