Publication | Closed Access
Research on SVM Based Network Intrusion Detection Classification
10
Citations
3
References
2009
Year
Unknown Venue
Support Vector MachineAnomaly DetectionMachine LearningEngineeringData MiningPattern RecognitionInformation SecurityThreat DetectionIntrusion Detection SystemKnowledge DiscoveryIntrusion DetectionNetwork BehaviorsInformation ForensicsFactor AnalysisComputer Science
This paper presents a new network intrusion detection classification model based on the Support vector machine (SVM). In this model, the factor analysis (FA) algorithm converted a large number of related network behaviors features into concise integrated features, and the support vector decision function ranking method (SVDFRM) calculated the contribution of network behaviors features. Then some important network behaviors features were extracted and network behaviors were classified consequently. The experimental results show that the detection rate and the real-time of this classification model are satisfying.
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