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Detection of the botnets’ low-rate DDoS attacks based on self-similarity

Lysenko, SergiiBobrovnikova, KiraMatiukh, SerhiiHurman, IvanSavenko, Oleg
International Journal of Electrical and Computer Engineering (IJECE) (Sinta 1)Vol. 0 No. 01 Agustus 2020
DOI10.11591/ijece.v10i4.pp3651-3659

Abstrak

An article presents the approach for the botnets’ low-rate a DDoS-attacks detection based on the botnet’s behavior in the network. Detection process involves the analysis of the network traffic, generated by the botnets’ low-rate DDoS attack. Proposed technique is the part of botnets detection system – BotGRABBER system. The novelty of the paper is that the low-rate DDoS-attacks detection involves not only the network features, inherent to the botnets, but also network traffic self-similarity analysis, which is defined with the use of Hurst coefficient. Detection process consists of the knowledge formation based on the features that may indicate low-rate DDoS attack performed by a botnet; network monitoring, which analyzes information obtained from the network and making conclusion about possible DDoS attack in the network; and the appliance of the security scenario for the corporate area network’s infrastructure in the situation of low-rate attacks.

Kata Kunci

Computer and InformaticsInformation TechnologiesBotnet detectionCyber attackHurst coefficientLow-rate DDoS attackNetwork traffic self-similarity

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Detection of the botnets’ low-rate DDoS attacks based on self-similarity | International Journal of Electrical and Computer Engineering (IJECE) | Publiora