DocumentCode :
2618206
Title :
Performance evaluation of various variants of fuzzy classifier systems for pattern classification problems
Author :
Ishibuchi, Hisao ; Nakashima, Tomoharu
Author_Institution :
Dept. of Ind. Eng., Osaka Prefecture Univ., Japan
fYear :
1997
fDate :
21-24 Sep 1997
Firstpage :
245
Lastpage :
250
Abstract :
We have already proposed a fuzzy classifier system for efficiently generating fuzzy if-then rules from numerical data for high dimensional pattern classification problems with many continuous attributes (H. Ishibuchi et al., 1995; 1996). We examine the performance of various variants of our fuzzy classifier systems by computer simulations on commonly used real world test problems. Those variants are implemented in the following manners: (i) using a different coding method; (ii) combining a learning procedure of each fuzzy if-then rule with the fuzzy classifier system; (iii) introducing a heuristic procedure for generating an initial population of fuzzy if-then rules; (iv) introducing a heuristic procedure for generating new fuzzy if-then rules that are used for replacing the worst rules in the current population; (v) extending the constant population size to an adjustable parameter; (vi) introducing the concept of voting for combining multiple fuzzy rule bases
Keywords :
fuzzy set theory; heuristic programming; knowledge based systems; learning (artificial intelligence); pattern classification; coding method; computer simulations; constant population size; continuous attributes; fuzzy classifier systems; fuzzy if-then rules; heuristic procedure; high dimensional pattern classification; initial population; learning procedure; multiple fuzzy rule bases; numerical data; pattern classification problems; performance evaluation; real world test problems; voting; Computer simulation; Control systems; Fuzzy sets; Fuzzy systems; Industrial engineering; Knowledge based systems; Pattern classification; Power generation; System testing; Voting;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Fuzzy Information Processing Society, 1997. NAFIPS '97., 1997 Annual Meeting of the North American
Conference_Location :
Syracuse, NY
Print_ISBN :
0-7803-4078-7
Type :
conf
DOI :
10.1109/NAFIPS.1997.624045
Filename :
624045
Link To Document :
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