DocumentCode :
108775
Title :
Induction of Shadowed Sets Based on the Gradual Grade of Fuzziness
Author :
Tahayori, Hooman ; Sadeghian, Alireza ; Pedrycz, Witold
Author_Institution :
Dept. of Comput. Sci., Ryerson Univ., Toronto, ON, Canada
Volume :
21
Issue :
5
fYear :
2013
fDate :
Oct. 2013
Firstpage :
937
Lastpage :
949
Abstract :
The existing methods of determining an α-cut of a fuzzy set to construct its underlying shadowed set do not fully comply with the concept of shadowed sets, namely, a retention of the total amount of fuzziness and its localized redistribution throughout a universe of discourse. Moreover, no closed formula to calculate the corresponding α-cut is available. This paper proposes analytical formulas to calculate threshold values required in the construction of shadowed sets. We introduce a new algorithm to design a shadowed set from a given fuzzy set. The proposed algorithm, which adheres to the main premise of shadowed sets of capturing the essence of fuzzy sets, helps localize fuzziness present in a given fuzzy set. We represent the fuzziness of a fuzzy set as a gradual number. Through defuzzification of the gradual number of fuzziness, we determine the required threshold (i.e., some α-cut) used in the formation of the shadowed set. We show that the shadowed set obtained in this way comes with a measure of fuzziness that is equal to the one characterizing the original fuzzy set.
Keywords :
fuzzy set theory; α-cut; analytical formulas; fuzziness gradual grade; fuzziness gradual number defuzzification; fuzzy set; shadowed set induction; Abstracts; Algorithm design and analysis; Argon; Educational institutions; Finite element methods; Fuzzy sets; Uncertainty; Fuzziness; fuzzy set; gradual number; shadowed set;
fLanguage :
English
Journal_Title :
Fuzzy Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6706
Type :
jour
DOI :
10.1109/TFUZZ.2012.2236843
Filename :
6399462
Link To Document :
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