JOURNAL ARTICLE

Flexible neuro-fuzzy systems

Leszek RutkowskiKrzysztof Cpałka

Year: 2003 Journal:   IEEE Transactions on Neural Networks Vol: 14 (3)Pages: 554-574   Publisher: Institute of Electrical and Electronics Engineers

Abstract

In this paper, we derive new neuro-fuzzy structures called flexible neuro-fuzzy inference systems or FLEXNFIS. Based on the input-output data, we learn not only the parameters of the membership functions but also the type of the systems (Mamdani or logical). Moreover, we introduce: 1) softness to fuzzy implication operators, to aggregation of rules and to connectives of antecedents; 2) certainty weights to aggregation of rules and to connectives of antecedents; and 3) parameterized families of T-norms and S-norms to fuzzy implication operators, to aggregation of rules and to connectives of antecedents. Our approach introduces more flexibility to the structure and design of neuro-fuzzy systems. Through computer simulations, we show that Mamdani-type systems are more suitable to approximation problems, whereas logical-type systems may be preferred for classification problems.

Keywords:
Neuro-fuzzy Computer science Flexibility (engineering) Fuzzy logic Artificial intelligence Parameterized complexity Fuzzy control system Type (biology) Fuzzy set Fuzzy classification Defuzzification Fuzzy set operations Mathematics Fuzzy number Theoretical computer science Algorithm

Metrics

195
Cited By
13.04
FWCI (Field Weighted Citation Impact)
66
Refs
0.99
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Fuzzy Logic and Control Systems
Physical Sciences →  Computer Science →  Artificial Intelligence
Neural Networks and Applications
Physical Sciences →  Computer Science →  Artificial Intelligence
Rough Sets and Fuzzy Logic
Physical Sciences →  Computer Science →  Computational Theory and Mathematics

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