A mobile agents and artificial neural networks for intrusion detection

被引:2
|
作者
机构
[1] El Kadhi, Nabil
[2] Hadjar, Karim
[3] El Zant, Nahla
来源
El Kadhi, N. (nelkadhi@ahliauniversity.edu.bh) | 1600年 / Academy Publisher卷 / 07期
关键词
Mobile agents - Computer crime - Network architecture - Neural networks - Network security - Intrusion detection;
D O I
10.4304/jsw.7.1.156-160
中图分类号
学科分类号
摘要
Nowadays any intrusion detection system should include decision making feature. Each network administrator, in his everyday job, is overwhelmed with a big number of events and alerts. It is a challenge to be able to take correct decisions and to classify events according to their accuracy. That's why we need to provide the administrator with the right tools in order to help him taking the correct decision. For this purpose, we suggest an Artificial Neural Networks (ANN) architecture for decision making within intrusion detection systems. Having in mind our IMA IDS solution [20] that presents a global agent architecture for enhanced intrusion network based solution, we are including ANN as a major decision algorithm using the learning and adaptive features of ANN. This inclusion aims to increase respectively efficiency, by reducing the fault positive, and detection capabilities by allowing detection with partial available information on the network status. © 2012 ACADEMY PUBLISHER.
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