DocumentCode :
293390
Title :
A destructive learning method of fuzzy inference rules
Author :
Fukumoto, Shinya ; Miyajima, Hiromi ; Kishida, Kazuya ; Nagasawa, Yoji
Author_Institution :
Dept. of Inf. & Comput. Sci., Kagoshima Univ., Japan
Volume :
2
fYear :
1995
fDate :
20-24 Mar 1995
Firstpage :
687
Abstract :
In order to construct a fuzzy system with a learning function, numerous studies combining fuzzy systems and neural networks (or descent method) are being carried out. The self-tuning method using the descent method has been proposed by Ichihashi et al. (1991) and it is known that the constructive method is more powerful than other methods using neural networks (or descent method). But this method does not have a sufficient generalization capability or an expressing capability for the acquired knowledge. In this paper, we propose a new learning method called a destructive method of fuzzy inference rules by the descent method. And we show that the destructive method is superior in the number of rules and inference errors but inferior in learning speed to the constructive one. Further more, in order to improve learning speed, we propose a learning method combining the constructive and the destructive methods. Some numerical examples are given to show the validity of the proposed methods, and applications of these methods to the obstacle avoidance problem are shown
Keywords :
fuzzy systems; generalisation (artificial intelligence); inference mechanisms; learning (artificial intelligence); path planning; self-adjusting systems; constructive method; descent method; destructive learning method; fuzzy inference rules; generalization; obstacle avoidance problem; self-tuning method; Computer errors; Computer science; Computer simulation; Fuzzy neural networks; Fuzzy systems; Learning systems; Neural networks; Tuning;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Fuzzy Systems, 1995. International Joint Conference of the Fourth IEEE International Conference on Fuzzy Systems and The Second International Fuzzy Engineering Symposium., Proceedings of 1995 IEEE Int
Conference_Location :
Yokohama
Print_ISBN :
0-7803-2461-7
Type :
conf
DOI :
10.1109/FUZZY.1995.409758
Filename :
409758
Link To Document :
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