2022
DOI: 10.1007/s10462-022-10318-x
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Evolved distance measures for circular intuitionistic fuzzy sets and their exploitation in the technique for order preference by similarity to ideal solutions

Abstract: Circular intuitionistic fuzzy (C-IF) sets are an up-and-coming tool for enforcing indistinct and imprecise information in variable and convoluted decision-making situations. C-IF sets, as opposed to typical intuitionistic fuzzy sets, are better suited for identifying the evaluation data with uncertainty in intricate realistic decision situations. The architecture of the technique for order preference by similarity to ideal solutions (TOPSIS) provides powerful evaluation tools to aid decision-making in intuitio… Show more

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Cited by 17 publications
(1 citation statement)
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References 47 publications
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“…The major strengths of intuitionistic fuzzy sets are flexibility and scalability, meaning the ability to expand and modify based on subjective experiences and judgments. Various extensions emerged to build on the concept, including intuitionistic fuzzy numbers, interval intuitionistic fuzzy sets, and interval intuitionistic fuzzy numbers [9][10][11] The application of intuitionistic fuzzy set distance is diverse. In image recognition [12] (Patel A et al2022), it is used to compare image similarities where two images' intuitionistic fuzzy sets are represented as feature vectors, and their similarity is assessed using distance calculation.…”
Section: Introductionmentioning
confidence: 99%
“…The major strengths of intuitionistic fuzzy sets are flexibility and scalability, meaning the ability to expand and modify based on subjective experiences and judgments. Various extensions emerged to build on the concept, including intuitionistic fuzzy numbers, interval intuitionistic fuzzy sets, and interval intuitionistic fuzzy numbers [9][10][11] The application of intuitionistic fuzzy set distance is diverse. In image recognition [12] (Patel A et al2022), it is used to compare image similarities where two images' intuitionistic fuzzy sets are represented as feature vectors, and their similarity is assessed using distance calculation.…”
Section: Introductionmentioning
confidence: 99%