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Assessment of Machine Learning Techniques for Building an Efficient IDS

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Auteur
Chytas S.P., Maglaras L., Derhab A., Stamoulis G.
Date
2020
Language
en
DOI
10.1109/SMART-TECH49988.2020.00048
Sujet
Denial-of-service attack
Intrusion detection
Machine learning
Background traffic
Complex environments
Cyber-attacks
DDoS Attack
Intrusion Detection Systems
Machine learning techniques
Potential threats
Real time
Network security
Institute of Electrical and Electronics Engineers Inc.
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Résumé
Intrusion Detection Systems (IDS) are the systems that detect and block any potential threats (e.g. DDoS attacks) in the network. In this project, we explore the performance of several machine learning techniques when used as parts of an IDS. We experiment with the CICIDS2017 dataset, one of the biggest and most complete IDS datasets in terms of having a realistic background traffic and incorporating a variety of cyber attacks. The techniques we present are applicable to any IDS dataset and can be used as a basis for deploying a real time IDS in complex environments. © 2020 IEEE.
URI
http://hdl.handle.net/11615/72915
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