Intrusion Detection System Based on K-Star Classifier and  Feature Set Reduction

Journal Title: IOSR Journals (IOSR Journal of Computer Engineering) - Year 2013, Vol 15, Issue 5

Abstract

 Network security and Intrusion Detection Systems (IDS’s) is an important security related research area. This paper applies K-star algorithm with filtering analysis in order to build a network intrusion detection  system. For our experimental analysis and as a case study, we have used the new NSL-KDD dataset, which is a  modified dataset for KDDCup 1999 intrusion detection benchmark dataset. With a split of 66.0% for the  training set and the remainder for the testing set a 2 class classifications has been implemented. WEKA which is  a java based open source software consists of a collection of machine learning algorithms for Data mining tasks  has been used in the testing process. The experimental results show that the proposed approach is very accurate  with low false positive rate and high true positive rate and it takes less learning time in comparison with other  existing approaches used for efficient network intrusion detection.

Authors and Affiliations

Deeman Y. Mahmood

Keywords

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  • EP ID EP157381
  • DOI -
  • Views 86
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How To Cite

Deeman Y. Mahmood (2013).  Intrusion Detection System Based on K-Star Classifier and  Feature Set Reduction. IOSR Journals (IOSR Journal of Computer Engineering), 15(5), 107-112. https://europub.co.uk/articles/-A-157381