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    IoT Network Attack Detection using Supervised Machine Learning

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    Date
    2021
    Author
    Krishnan, Sundar
    Neyaz, Ashar
    Liu, Qingzhong
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    Abstract
    The use of supervised learning algorithms to detect malicious traffic can be valuable in designing intrusion detection systems and ascertaining security risks. The Internet of things (IoT) refers to the billions of physical, electronic devices around the world that are often connected over the Internet. The growth of IoT systems comes at the risk of network attacks such as denial of service (DoS) and spoofing. In this research, we perform various supervised feature selection methods and employ three classifiers on IoT network data. The classifiers predict with high accuracy if the network traffic against the IoT device was malicious or benign. We compare the feature selection methods to arrive at the best that can be used for network intrusion prediction
    URI
    https://hdl.handle.net/20.500.11875/3245
    Collections
    • Cyber Forensics Intelligence Center
    • Department of Computer Science
    Citation
    Kumar A, Neyaz A and Liu Q (2021). IoT Network Attack Detection using Supervised Machine Learning. International Journal of Artificial Intelligence and Expert Systems, 10(2): 18-32.
    Description
    Article originally published in International Journal of Artificial Intelligence and Expert Systems

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