IMPLEMENTATION OF SEQUENTIAL SVM CLASSIFIER TO IMPROVE RESPONSE T IME AND DETECTION RATE
Journal Title: International Journal of Engineering Sciences & Research Technology - Year 30, Vol 4, Issue 6
Abstract
It is important to protect the assets we exchange on network that may be harmed by malicious activities. For detection of malicious activities we use Intrusion Detection System (IDS). Focus of this paper is on IDS using SVM. SVM is used as it has property of high scalability and high speed of classification which proves it efficient for IDS. The survey result shows problem of low detection rate and high response time when using traditional SVM. The problem of surveyed literature is overcome by implementing SVM - SMO model proposed in this paper and using appropriate pre - processing method. The model optimizes the Lagrange multiplier and finds support vectors which SVM algorit hm uses for classification. The SVM - SMO model in this paper is implemented for sequential as well as parallel approach. The weight updating module is used by Sequential approach which prioritizes SVM classifier for improved performance. The experimental re sult shows improvement of 3.94% and 1.85s in detection rate and response time by implementing SVM - SMO model in sequential approach as well as improvement of 8.91s in response time using parallel approach.
Authors and Affiliations
Pooja Champaneria , Bhavin Shah , Krunal Panchal
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