DocumentCode :
836579
Title :
Design for Self-Organizing Fuzzy Neural Networks Based on Genetic Algorithms
Author :
Leng, Gang ; McGinnity, Thomas Martin ; Prasad, Girijesh
Author_Institution :
Sch. of Informatics, Manchester Univ.
Volume :
14
Issue :
6
fYear :
2006
Firstpage :
755
Lastpage :
766
Abstract :
A novel hybrid learning algorithm based on a genetic algorithm to design a growing fuzzy neural network, named self-organizing fuzzy neural network based on genetic algorithms (SOFNNGA), to implement Takagi-Sugeno (TS) type fuzzy models is proposed in this paper. A new adding method based on geometric growing criterion and the epsiv-completeness of fuzzy rules is first used to generate the initial structure. Then a hybrid algorithm based on genetic algorithms, backpropagation, and recursive least squares estimation is used to adjust all parameters including the number of fuzzy rules. This has two steps: First, the linear parameter matrix is adjusted, and second, the centers and widths of all membership functions are modified. The GA is introduced to identify the least important neurons, i.e., the least important fuzzy rules. Simulations are presented to illustrate the performance of the proposed algorithm
Keywords :
backpropagation; fuzzy neural nets; fuzzy systems; genetic algorithms; least squares approximations; self-organising feature maps; Takagi-Sugeno fuzzy model; backpropagation; genetic algorithm; hybrid learning algorithm; linear parameter matrix; recursive least squares estimation; self-organizing fuzzy neural network; Algorithm design and analysis; Backpropagation algorithms; Fuzzy logic; Fuzzy neural networks; Fuzzy systems; Genetic algorithms; Intelligent systems; Least squares approximation; Neural networks; Neurons; Backpropagation; Takagi–Sugeno (TS) fuzzy model; genetic algorithm (GA); recursive least squares estimation; self-organizing fuzzy neural network (SOFNN);
fLanguage :
English
Journal_Title :
Fuzzy Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6706
Type :
jour
DOI :
10.1109/TFUZZ.2006.877361
Filename :
4016084
Link To Document :
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