DocumentCode :
3543250
Title :
Statistical analysis of different artificial intelligent techniques applied to Intrusion Detection System
Author :
Tribak, Hind ; Delgado-Marquez, Blanca L. ; Rojas, P. ; Valenzuela, O. ; Pomares, H. ; Roj, I.
Author_Institution :
Dept. of Comput. Archit. & Comput. Technol., Univ. of Granada, Granada, Spain
fYear :
2012
fDate :
10-12 May 2012
Firstpage :
434
Lastpage :
440
Abstract :
Intrusion Detection System (IDS) which are increasingly a key part of system defense are used to identify abnormal activities in a computer system. In general, the traditional IDS relies on the extensive knowledge of security experts, in particular, on their familiarity with the computer system to be protected. To reduce this dependence, various data-mining and machine learning techniques have been used in the literature. The experiments and evaluations of the proposed intrusion detection system are performed with the NSL-KDD intrusion detection dataset. We will apply different learning algorithms on NSL-KDD data set, to recognize between normal and attack connections and compare their performing in different scenarios- discretization, features selections and algorithm method for classification- using a powerful statistical analysis: ANOVA. In this study, both the accuracy of the configuration of different system and methodologies used, and also the computational time and complexity of the methodologies are analyzed.
Keywords :
data mining; learning (artificial intelligence); security of data; statistical analysis; ANOVA; NSL-KDD data set; NSL-KDD intrusion detection dataset; abnormal activities; artificial intelligent techniques; computer system; data mining; intrusion detection system; learning algorithms; machine learning; security experts; statistical analysis; system defense; Analysis of variance; Data mining; Hidden Markov models; Ions; Marine animals; Probes; Security; Intrusion Detection System; classification systems; soft-computing; statistical analysis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multimedia Computing and Systems (ICMCS), 2012 International Conference on
Conference_Location :
Tangier
Print_ISBN :
978-1-4673-1518-0
Type :
conf
DOI :
10.1109/ICMCS.2012.6320275
Filename :
6320275
Link To Document :
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