DocumentCode :
2868677
Title :
Evolving Neural Network Classifiers and Feature Subset Using Artificial Fish Swarm
Author :
Zhang, Meifeng ; Shao, Cheng ; Li, Fuchao ; Gan, Yong ; Sun, Junman
Author_Institution :
Res. Centre of Inf. & Control, Dalian Univ. of Technol.
fYear :
2006
fDate :
25-28 June 2006
Firstpage :
1598
Lastpage :
1602
Abstract :
As a novel simulated evolutionary computation technique, artificial fish swarm algorithm (AFSA) shows many promising characters. This paper presents the use of AFSA as a new tool which sets up a neural network (NN), adjusts its parameters, and performs feature reduction, all simultaneously. In the optimization process, all features and hidden units are encoded into a real-valued artificial fish (AF), and give out the method of designing fitness function. The experimental results on several public domain data sets from UCI show that our algorithm can obtain an optimal NN with fewer input features and hidden units, and perform almost as good as even better than an original complex NN with entire input features. And also indicate that optimizing a network classifier for a specific task has the potential to produce a simple classifier with low classification error and good generalization ability
Keywords :
evolutionary computation; neural nets; pattern classification; artificial fish swarm algorithm; feature selection; neural network classifiers; simulated evolutionary computation technique; Artificial neural networks; Automation; Computational modeling; Computer architecture; Educational institutions; Evolutionary computation; Marine animals; Mechatronics; Neural networks; Robust control; Artificial Fish Swarm Algorithm; Feature selection; Neural network; Optimization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Mechatronics and Automation, Proceedings of the 2006 IEEE International Conference on
Conference_Location :
Luoyang, Henan
Print_ISBN :
1-4244-0465-7
Electronic_ISBN :
1-4244-0466-5
Type :
conf
DOI :
10.1109/ICMA.2006.257414
Filename :
4026329
Link To Document :
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