DocumentCode :
1750984
Title :
A neuro-fuzzy approach for feature selection
Author :
Benítez, J.M. ; Castro, J.L. ; Mantas, C.J. ; Rojas, F.
Author_Institution :
Dept. Comput. Sci. & Artificial Intelligence, Granada Univ., Spain
Volume :
2
fYear :
2001
fDate :
25-28 July 2001
Firstpage :
1003
Abstract :
A method for feature selection based on a combination of artificial neural network and fuzzy techniques is presented. The procedure produces a ranking of features according to their relevance to the network. This ranking is used to perform a backward selection by successively removing input nodes in a network trained using the complete set of features as inputs. Irrelevant input units and their connections are pruned. The remaining biases are adjusted in such a way that the overall change in the behavior learnt by the network is under control. When the problem is too hard to be modeled by a single network, several of them are used to generate different rankings which are aggregated by using a fuzzy logic operator. The proposed method is applied on a number of real-world classification problems. Empirical results show that the feature selection enables the network to improve its generalization ability. This procedure also offers several advantages with respect to other feature selection methods, especially improved efficiency
Keywords :
computational complexity; fuzzy logic; fuzzy neural nets; fuzzy set theory; learning (artificial intelligence); pattern classification; artificial neural network; backward selection; feature ranking; feature selection; feature selection methods; fuzzy logic operator; fuzzy techniques; generalization ability; input nodes; irrelevant input units; neuro-fuzzy approach; real-world classification problems; Artificial intelligence; Artificial neural networks; Computer science; Costs; Feature extraction; Fuzzy logic; Fuzzy neural networks; Neural networks; Pattern recognition; System identification;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
IFSA World Congress and 20th NAFIPS International Conference, 2001. Joint 9th
Conference_Location :
Vancouver, BC
Print_ISBN :
0-7803-7078-3
Type :
conf
DOI :
10.1109/NAFIPS.2001.944742
Filename :
944742
Link To Document :
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