DocumentCode :
2978578
Title :
Investigating the Effect of Fixing the Subset Length Using Ant Colony Optimization Algorithms for Feature Subset Selection Problems
Author :
Abd-Alsabour, Nadia ; Randall, Mai ; Lewis, Andrew
Author_Institution :
Cairo Univ., Cairo, Egypt
fYear :
2012
fDate :
14-16 Dec. 2012
Firstpage :
733
Lastpage :
738
Abstract :
The issue of studying the effect of fixing the length of the selected feature subsets using ant colony optimization (ACO) has not yet been studied. This paper addresses this concern by demonstrating four points that are: 1) determining the optimal feature subset, 2) determining the length of the subsets in ACO for subset selection problems, 3) different stopping criteria when solving feature selection by ACO, and 4) experiments on an ACO algorithm for feature selection problems using artificial and real-world datasets in two cases fixing and not fixing the length of the selected feature subsets with the use of a support vector machine (SVM) classifier. The results showed that not fixing the length of the selected feature subsets is better than fixing the length of the selected feature subsets in terms of the classifier accuracy in seven datasets out of ten.
Keywords :
ant colony optimisation; feature extraction; support vector machines; ACO algorithm; SVM classifier; ant colony optimization algorithms; artificial datasets; feature subset selection problems; optimal feature subset; real-world datasets; subset length fixing effect; support vector machine classifier; Accuracy; Ant colony optimization; Classification algorithms; Educational institutions; Genetic algorithms; Machine learning algorithms; Support vector machines; ACO; feature selection; subset problems;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Parallel and Distributed Computing, Applications and Technologies (PDCAT), 2012 13th International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-0-7695-4879-1
Type :
conf
DOI :
10.1109/PDCAT.2012.84
Filename :
6589368
Link To Document :
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