A MORE ACCURATE ADAPTIVE FUZZY INFERENCE SYSTEM

被引:9
作者
CHAN, KC
LIN, GCI
LEONG, SS
机构
[1] UNIV S AUSTRALIA,SCH MFG & MECH ENGN,CTR ADV MFG RES,THE LEVELS,SA 5095,AUSTRALIA
[2] UNIV S AUSTRALIA,SCH MFG & MECH ENGN,CTR MFG & AUTOMAT,THE LEVELS,SA 5095,AUSTRALIA
关键词
VIRTUAL FUZZY SET; FUZZY MODELING; DYNAMIC SYSTEMS; PRODUCTION RULES;
D O I
10.1016/0166-3615(95)80006-9
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
This paper presents a methodology for implementing adaptive fuzzy systems based on a new concept called virtual fuzzy set. The concept provides a new representation for the consequent part of a fuzzy production rule. A virtual fuzzy set, which consists of two consecutive fuzzy sets with different degrees of membership, is an imaginary fuzzy set located at a location most appropriate for a numerical training sample. The new concept is incorporated into an adaptive algorithm based on the fuzzy rule generation scheme suggested by Wang and Mendel. It is a one-pass build-up procedure and time-consuming iterative training is not required. The proposed method has been applied to the fuzzy modelling of a difficult non-linear system. The results showed that the new algorithm has better performance than the Wang-Mendel approach. The improvement is more significant when the input-output space is quantized with a small number of fuzzy sets.
引用
收藏
页码:61 / 73
页数:13
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