Type- (2,k) Overlap Indices
Automatic image detection is one of the most important areas in computing due to its potential application in numerous real-world scenarios. One important tool to deal with that is called overlap indices . They were introduced as a procedure to provide the maximum lack of knowledge when comparing tw...
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Veröffentlicht in: | IEEE transactions on fuzzy systems 2023-03, Vol.31 (3), p.860-874 |
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Sprache: | eng |
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Zusammenfassung: | Automatic image detection is one of the most important areas in computing due to its potential application in numerous real-world scenarios. One important tool to deal with that is called overlap indices . They were introduced as a procedure to provide the maximum lack of knowledge when comparing two fuzzy objects. They have been successfully applied in the following fields: image processing, fuzzy rule-based systems, decision making, and computational brain interfaces. This notion of overlap indices is also necessary for applications in which type-2 fuzzy sets are required. In this article, we introduce the notion of type-(2,k) overlap index (k \in \lbrace 0,1,2\rbrace) in the setting of type-2 fuzzy sets. We describe both the reasons that have led to this notion and the relationships that naturally arise among the algebraic underlying structures. Finally, we illustrate how type-(2,k) overlap indices can be employed in the setting of fuzzy rule-based systems when the involved objects are type-2 fuzzy sets. |
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ISSN: | 1063-6706 1941-0034 |
DOI: | 10.1109/TFUZZ.2022.3188918 |