DocumentCode :
2855501
Title :
LoSS Detection Approach Based on ESOSS and ASOSS Models
Author :
Rohani, Mohd Fo´ad ; Maarof, Mohd Aizaini ; Selamat, Ali ; Kettani, Houssain
Author_Institution :
Fac. of Comput. Sci. & Inf. Syst., Univ. Teknol. Malaysia, Skudai
fYear :
2008
fDate :
8-10 Sept. 2008
Firstpage :
192
Lastpage :
197
Abstract :
This paper investigates loss of self-similarity (LoSS) detection performance using exact and asymptotic second order self-similarity (ESOSS and ASOSS) models. Previous works on LoSS detection have used ESOSS model with fixed sampling that we believe is insufficient to reveal LoSS detection efficiently. In this work, we study two variables known as sampling level and correlation lag in order to improve LoSS detection accuracy. This is important when ESOSS and ASOSS models are considered concurrently in the self-similarity parameter estimation method. We used the optimization method (OM) to estimate the self-similarity parameter value since it was proven faster and more accurate compared to known methods in the literature. Our simulation results show that normal traffic behavior is not influenced by the sampling parameter. For abnormal traffic, however, LoSS detection accuracy is very much affected by the value of sampling level and correlation lag used in the estimation.
Keywords :
optimisation; quality of service; security of data; Internet traffic monitoring; LoSS detection; asymptotic second order self-similarity; exact second order self-similarity; optimization method; self-similarity detection performance loss; uninterrupted Internet services; Computer science; Computer security; Optimization methods; Parameter estimation; Performance loss; Quality of service; Sampling methods; Telecommunication traffic; Traffic control; Web and internet services; Anomaly Detection; Loss of Self-Similarity; Parameter Adjustment; Second Order Self-Similarity Model;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information Assurance and Security, 2008. ISIAS '08. Fourth International Conference on
Conference_Location :
Naples
Print_ISBN :
978-0-7695-3324-7
Type :
conf
DOI :
10.1109/IAS.2008.37
Filename :
4627084
Link To Document :
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