A systematic review on hybrid intrusion detection system
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Publisher
Wiley
Abstract
As computer networks keep growing at a high rate, achieving con.dentiality, integrity, and availability of the information system
is essential. Intrusion detection systems (IDSs) have been widely used to monitor and secure networks. +e two major limitations
facing existing intrusion detection systems are high rates of false-positive alerts and low detection rates on zero-day attacks. To
overcome these problems, we need intrusion detection techniques that can learn and e8ectively detect intrusions. Hybrid methods
based on machine learning techniques have been proposed by di8erent researchers. +ese methods take advantage of the single
detection methods and leverage their weakness. +erefore, this paper reviews 111 related studies in the period between 2012 and
2022 focusing on hybrid detection systems. +e review points out the existing gaps in the development of hybrid intrusion
detection systems and the need for further research in this area.
Description
DOI: https://doi.org/10.1155/2022/9663052
Keywords
Citation
Security and Communication Networks, Volume 2022, 23 pages
