Network Intrusion Detection Method Based on RS-LSSVM

Author:

Wang Fang Nian1,Wang Shen Shen2,Che Wan Fang2,Bai Yun2

Affiliation:

1. Guilin Air Force Academy

2. Key Laboratory of Complex Aviation System Simulation

Abstract

An intrusion detection method based on RS-LSSVM is studied in this paper. Firstly, attribute reduction algorithm based on the generalized decision table is proposed to remove the interference features and reduce the dimension of input feature space. Then the classification method based on least square support vector machine (LSSVM) is analyzed. The sample data after dimension reduction is used for LSSVM training, and the LSSVM classification model is obtained, which forms the ability of detecting unknown intrusion. Simulation results show that the proposed method can effectively remove the unnecessary features and improve the performance of network intrusion detection.

Publisher

Trans Tech Publications, Ltd.

Reference8 articles.

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2. Zhu Shouye. Computer Engineering and Applications, Vol. 45 (2009), p.123.

3. Dai Tianhong, Wang Keqi, Yang Shaochun. China Safety Science Journal, Vol. 18(2008), p.126.

4. Yang Huihua, Wang Xingyu and Wang Yong. Control and Decision, Vol. 20(2005), p.251.

5. Hu Jinhai, Xie Shousheng and Wang Cheng. Journal of Aerospace Power, Vol. 23(2008), p.1346.

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