Real-time Support Vector Machine based Network Intrusion Detection system using Apache Storm

Muhammad Asif Manzoor, Yasser Morgan

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

25 Scopus citations

Abstract

Network intrusion detection is critical component of network management for security, quality of service and other purposes. These systems allow early detection of network intrusion and malicious activities; based on this detection, appropriate actions can be applied to manage these attacks. Several network intrusion detection systems are proposed and evaluated and many of them are currently in use to provide better security. Currently, computer networks are generating high volume of data traffic which cannot be analyzed by most network intrusion detection systems. This situation requires new techniques that can handle huge volume of real time data traffic and it must maintain the high throughput. We have proposed to network intrusion system based on support vector machine in this work. We also propose to use Apache Storm framework; which is a real-time distributed stream processing framework. This network intrusion system is tested for KDD 99 network intrusion dataset.

Original languageEnglish
Title of host publication7th IEEE Annual Information Technology, Electronics and Mobile Communication Conference, IEEE IEMCON 2016
EditorsHimadri Nath Saha, Satyajit Chakrabarti
ISBN (Electronic)9781509009961
DOIs
StatePublished - 16 Nov 2016
Event7th IEEE Annual Information Technology, Electronics and Mobile Communication Conference, IEEE IEMCON 2016 - Vancouver, Canada
Duration: 13 Oct 201615 Oct 2016

Publication series

Name7th IEEE Annual Information Technology, Electronics and Mobile Communication Conference, IEEE IEMCON 2016

Conference

Conference7th IEEE Annual Information Technology, Electronics and Mobile Communication Conference, IEEE IEMCON 2016
Country/TerritoryCanada
CityVancouver
Period13/10/1615/10/16

Keywords

  • Apache Storm
  • LIBSVM
  • Network intrusion
  • real time analysis
  • support vector machine

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