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10.1109/PDCAT.2005.181guideproceedingsArticle/Chapter ViewAbstractPublication PagesConference Proceedingsacm-pubtype
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Optimization of Intrusion Detection through Fast Hybrid Feature Selection

Published: 05 December 2005 Publication History

Abstract

Existing intrusion detection techniques emphasize on building intrusion detection model based on all features provided. But all features are not relevant and some of them are redundant and useless. In this paper, we propose and investigate a fast hybrid feature selection method - a fusion of Correlation-based Feature Selection, Support Vector Machine and Genetic Algorithm - to determine an optimal feature set. An appropriate feature set helps to build efficient decision model as well as reduced feature set lights up the training and testing process considerably. We have examined the feasibility of our approach by conducting several experiments using KDD 1999 CUP intrusion dataset. Experimental results indicate the reduction of training and testing time by an order of magnitude while maintaining the detection accuracy within tolerable range.

Cited By

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  • (2013)Features selection approaches for intrusion detection systems based on evolution algorithmsProceedings of the 7th International Conference on Ubiquitous Information Management and Communication10.1145/2448556.2448566(1-5)Online publication date: 17-Jan-2013
  • (2010)Feature subset selection in large dimensionality domainsPattern Recognition10.1016/j.patcog.2009.06.00943:1(5-13)Online publication date: 1-Jan-2010
  • (2009)Features selection for intrusion detection systems based on support vector machinesProceedings of the 6th IEEE Conference on Consumer Communications and Networking Conference10.5555/1700527.1700791(1066-1073)Online publication date: 11-Jan-2009

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Published In

cover image Guide Proceedings
PDCAT '05: Proceedings of the Sixth International Conference on Parallel and Distributed Computing Applications and Technologies
December 2005
1086 pages
ISBN:0769524052

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IEEE Computer Society

United States

Publication History

Published: 05 December 2005

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Cited By

View all
  • (2013)Features selection approaches for intrusion detection systems based on evolution algorithmsProceedings of the 7th International Conference on Ubiquitous Information Management and Communication10.1145/2448556.2448566(1-5)Online publication date: 17-Jan-2013
  • (2010)Feature subset selection in large dimensionality domainsPattern Recognition10.1016/j.patcog.2009.06.00943:1(5-13)Online publication date: 1-Jan-2010
  • (2009)Features selection for intrusion detection systems based on support vector machinesProceedings of the 6th IEEE Conference on Consumer Communications and Networking Conference10.5555/1700527.1700791(1066-1073)Online publication date: 11-Jan-2009

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