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Partitioned Heronian Means Based on Linguistic Intuitionistic Fuzzynumbers for Dealing with Multi-Attribute Group Decision Making

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TLDR
In this paper, the authors proposed the partitioned Heronian mean (PHM) operator, which assumes that all attributes are partitioned into several parts and members in the same part are interrelated while in different parts there are no interrelationships among members, and developed some new operational rules of LIFNs to consider the interactions between membership function and non-membership function, especially when the degree of nonmembership is zero.
Abstract
Abstract Heronian mean (HM) operator has the advantages of considering the interrelationships between parameters, and linguistic intuitionistic fuzzy number (LIFN), in which the membership and non-membership are expressed by linguistic terms, can more easily describe the uncertain and the vague information existing in the real world. In this paper, we propose the partitioned Heronian mean (PHM) operator which assumes that all attributes are partitioned into several parts and members in the same part are interrelated while in different parts there are no interrelationships among members, and develop some new operational rules of LIFNs to consider the interactions between membership function and non-membership function, especially when the degree of non-membership is zero. Then we extend PHM operator to LIFNs based on new operational rules, and propose the linguistic intuitionistic fuzzy partitioned Heronian mean (LIFPHM) operator, the linguistic intuitionistic fuzzy weighted partitioned Heronian mean (LIFWPHM) operator, the linguistic intuitionistic fuzzy partitioned geometric Heronian mean (LIFPGHM) operator and linguistic intuitionistic fuzzy weighted partitioned geometric Heronian mean (LIFWPGHM) operator. Further, we develop two methods to solve multi-attribute group decision making (MAGDM) problems with the linguistic intuitionistic fuzzy information. Finally, we give some examples to verify the effectiveness of two proposed methods by comparing with the existing

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Citations
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Multiple-attribute group decision-making based on power Bonferroni operators of linguistic q-rung orthopair fuzzy numbers

TL;DR: To deal with the multiple‐attribute group decision‐making (MAGDM) problems with Lq‐ROFNs, the linguistic score and accuracy functions of the L q‐rung orthopair fuzzy numbers are proposed and introduced and proved.
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New q-rung orthopair fuzzy partitioned Bonferroni mean operators and their application in multiple attribute decision making

TL;DR: A new multiple‐attribute decision‐making method based on the q‐ROFWPBM (q‐ROFPGWBM) operator is proposed and a numerical example of investment company selection problem is given to illustrate feasibility and practical advantages of the new method.
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Linguistic q-rung orthopair fuzzy sets and their interactional partitioned Heronian mean aggregation operators

TL;DR: The linguistic intuitionistic fuzzy sets and linguistic Pythagorean fuzzy sets are two linguistic orthopair fuzzy sets whose membership grades are pairs of linguistic terms from the predefined linguistic term sets, which can be named linguistic q‐rung orthop air fuzzy sets.
References
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TL;DR: A separation theorem for convex fuzzy sets is proved without requiring that the fuzzy sets be disjoint.
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TL;DR: Various properties are proved, which are connected to the operations and relations over sets, and with modal and topological operators, defined over the set of IFS's.
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A 2-tuple fuzzy linguistic representation model for computing with words

TL;DR: This paper develops a computational technique for computing with words without any loss of information in the 2-tuple linguistic model and extends different classical aggregation operators to deal with this model.

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TL;DR: In this article, a definition of the concept "intuitionistic fuzzy set" (IFS) is given, the latter being a generalization of the Fuzzy Set and an example is described.
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Some geometric aggregation operators based on intuitionistic fuzzy sets

TL;DR: This paper develops some new geometric aggregation operators, such as the intuitionistic fuzzy weighted geometric (IFWG) operator, the intuitionists fuzzy ordered weighted geometric(IFOWG)operator, and the intuitionism fuzzy hybrid geometric (ifHG) operators, which extend the WG and OWG operators to accommodate the environment in which the given arguments are intuitionistic fuzz sets.
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