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Linguistic Neutrosophic Generalized Partitioned Bonferroni Mean Operators and Their Application to Multi-Attribute Group Decision Making

机译:语言中智广义广义Bonferroni均值算子及其在多属性群决策中的应用

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To solve the problems related to inhomogeneous connections among the attributes, we introduce a novel multiple attribute group decision-making (MAGDM) method based on the introduced linguistic neutrosophic generalized weighted partitioned Bonferroni mean operator ( LNGWPBM ) for linguistic neutrosophic numbers (LNNs). First of all, inspired by the merits of the generalized partitioned Bonferroni mean (GPBM) operator and LNNs, we combine the GPBM operator and LNNs to propose the linguistic neutrosophic GPBM ( LNGPBM ) operator, which supposes that the relationships are heterogeneous among the attributes in MAGDM. Then, we discuss its desirable properties and some special cases. In addition, aimed at the different importance of each attribute, the weighted form of the LNGPBM operator is investigated, which we call the LNGWPBM operator. Then, we discuss some of its desirable properties and special examples accordingly. In the end, we propose a novel MAGDM method on the basis of the introduced LNGWPBM operator, and illustrate its validity and merit by comparing it with the existing methods.
机译:为了解决与属性之间不均匀连接有关的问题,我们引入了一种新的多属性组决策(MAGDM)方法,该方法基于引入的语言中智广义广义分区Bonferroni均值算子(LNGWPBM)进行语言中智数字(LNN)。首先,受广义分区Bonferroni均值(GPBM)算子和LNN的优点启发,我们将GPBM算子和LNNs结合起来,提出了语言中智性GPBM(LNGPBM)算子,该算子假设属性之间的关系是异质的MAGDM。然后,我们讨论其理想的属性和一些特殊情况。另外,针对每个属性的不同重要性,研究了LNGPBM运算符的加权形式,我们称其为LNGWPBM运算符。然后,我们讨论其一些理想的特性并相应地举一些特殊的例子。最后,在引入的LNGWPBM算子的基础上,提出了一种新的MAGDM方法,并与现有方法进行了比较说明其有效性和优点。

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