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首页> 外文期刊>Informatica: An International Journal of Computing and Informatics >Some Picture Fuzzy Aggregation Operators based on Frank t-norm and t-conorm: Application to MADM Process
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Some Picture Fuzzy Aggregation Operators based on Frank t-norm and t-conorm: Application to MADM Process

机译:基于Frank T-Norm和T-Conorm的一些图片模糊聚合运算符:对Madm过程的应用

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In this paper, we develop some new operational laws and their corresponding aggregation operators for picture fuzzy sets (PFSs). The PFS is a powerful tool to deal with vagueness, which is a generalization of a fuzzy set and an intuitionistic fuzzy set (IFS). PFSs can model uncertainty in situations that consist of more than two answers like yes, refusal, neutral, and no. The operations of t-norm and t-conorm, developed by Frank, are usually a better application with its flexibility. From that point of view, the concepts of Frank t-norm and t-conorm are introduced to aggregate picture fuzzy information. We propose some new operational laws of picture fuzzy numbers (PFNs) based on Frank t-norm and t-conorm. Further, with the assistance of these operational laws, we have introduced picture fuzzy Frank weighted averaging (PFFWA) operator, picture fuzzy Frank order weighted averaging (PFFOWA) operator, picture fuzzy Frank hybrid averaging (PFFHA) operator, picture fuzzy Frank weighted geometric (PFFWG) operator, picture fuzzy Frank order weighted geometric (PFFOWG) operator, picture fuzzy Frank hybrid geometric (PFFHG) operator and discussed with their suitable properties. Then, with the help of PFFWA and PFFWG operators, we have presented an algorithm to solve multiple-attribute decision making (MADM) problems under the picture fuzzy environment. Finally, we have used a numerical example to illustrate the flexibility and validity of the proposed method and compared the results with other existing methods.
机译:在本文中,我们为图片模糊集(PFSS)制定了一些新的运营法律及其相应的聚合运营商。 PFS是一种强大的工具,可以处理模糊性,这是模糊集的概括和直觉模糊集(IFS)。 PFSS可以在局势中模拟不确定性,这些情况由两个以上的答案包括是,拒绝,中立,没有。由Frank开发的T-Norm和T-Conorm的操作通常是一种更好的应用,具有其灵活性。从该角度来看,坦率T-NARM和T-CONOR的概念被引入汇总图片模糊信息。我们提出了基于Frank T-Norm和T-Conorm的一些新的图像模糊数(PFNS)的操作规律。此外,在这些操作法律的协助下,我们引入了图片模糊弗兰克加权平均(Pffwwa)操作员,图片模糊坦率订单加权平均(Pffowa)运营商,图片模糊弗兰克混合级(Pffha)操作员,图片模糊弗兰克加权几何( PFFWG)操作员,图片模糊坦率订购加权几何(PFFOWG)操作员,图片模糊弗兰克混合几何(PFFHG)操作员,并与其合适的性质讨论。然后,在PFFWA和PFFWG运算符的帮助下,我们提出了一种算法来解决图片模糊环境下的多个属性决策(MADM)问题。最后,我们使用了一个数字示例来说明所提出的方法的灵活性和有效性,并将结果与​​其他现有方法进行比较。

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