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      A novel Ensemble of Hybrid Intrusion Detection System for Detecting Internet of Things Attacks

      , , , ,
      Electronics
      MDPI AG

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          Abstract

          The Internet of Things (IoT) has been rapidly evolving towards making a greater impact on everyday life to large industrial systems. Unfortunately, this has attracted the attention of cybercriminals who made IoT a target of malicious activities, opening the door to a possible attack to the end nodes. Due to the large number and diverse types of IoT devices, it is a challenging task to protect the IoT infrastructure using a traditional intrusion detection system. To protect IoT devices, a novel ensemble Hybrid Intrusion Detection System (HIDS) is proposed by combining a C5 classifier and One Class Support Vector Machine classifier. HIDS combines the advantages of Signature Intrusion Detection System (SIDS) and Anomaly-based Intrusion Detection System (AIDS). The aim of this framework is to detect both the well-known intrusions and zero-day attacks with high detection accuracy and low false-alarm rates. The proposed HIDS is evaluated using the Bot-IoT dataset, which includes legitimate IoT network traffic and several types of attacks. Experiments show that the proposed hybrid IDS provide higher detection rate and lower false positive rate compared to the SIDS and AIDS techniques.

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          Most cited references26

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          DDoS in the IoT: Mirai and Other Botnets

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            Towards the development of realistic botnet dataset in the internet of things for network forensic analytics: Bot-IoT dataset

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              A survey of intrusion detection in Internet of Things

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                Author and article information

                Journal
                ELECGJ
                Electronics
                Electronics
                MDPI AG
                2079-9292
                November 2019
                October 23 2019
                : 8
                : 11
                : 1210
                Article
                10.3390/electronics8111210
                72cf1eb4-6f68-4013-9f3f-9ef2eebf660c
                © 2019

                https://creativecommons.org/licenses/by/4.0/

                History

                Quantitative & Systems biology,Biophysics
                Quantitative & Systems biology, Biophysics

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