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Network Intrusion Detection Method Based on High Speed and Precise Genetic Algorithm Neural Network  ( CPCI-S收录 EI收录)  

文献类型:会议论文

英文题名:Network Intrusion Detection Method Based on High Speed and Precise Genetic Algorithm Neural Network

作者:Tian, Jingwen[1];Gao, Meijuan[1]

通讯作者:Tian, JW[1]

机构:[1]Beijing Union Univ, Dept Automat Control, Beijing, Peoples R China

第一机构:北京联合大学城市轨道交通与物流学院

通讯机构:[1]corresponding author), Beijing Union Univ, Dept Automat Control, Beijing, Peoples R China.|[1141751]北京联合大学城市轨道交通与物流学院;[11417]北京联合大学;

会议论文集:International Conference on Networks Security, Wireless Communications and Trusted Computing

会议日期:APR 25-26, 2009

会议地点:Wuhan, PEOPLES R CHINA

语种:英文

外文关键词:Network; intrusion detection; genetic algorithm; neural network

摘要:Aimed at the network intrusion behaviors are characterized with uncertainty, complexity, diversity and dynamic tendency and the advantages of neural network, an intrusion detection method based on high speed and precise genetic algorithm neural network is presented in this paper. The high speed and precise genetic algorithm neural network is combined the adaptive and floating-point code genetic algorithm with BP network which has higher accuracy and faster convergence speed. We construct the network structure, and give the algorithm flow. We discussed and analyzed the impact-factor of intrusion behaviors. With the ability of strong self-learning and faster convergence of high speed and precise genetic algorithm neural network, the network intrusion detection method can detect various intrusion behaviors rapidly and effectively by learning the typical intrusion characteristic information. The experimental result shows that this intrusion detection method is feasible and effective.

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