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Securing the Internet of Things using Machine Learning: A Review

机译:使用机器学习确保物联网:评论

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The Internet of Things facilitates integration of massive group of devices into networks to provide data for an ever-growing number of applications. The current and future IoT applications holds promise to improve the convenience and comfort for the user but are prone to various types of security threats namely Denial of Service (DoS), Man-in-the-Middle, spoofing, Jamming, Eavesdropping and software attacks. Therefore, it becomes crucial to address these security challenges. In this paper, we discuss major security threats that exist at IoT layers and review Machine Learning based IoT security systems with a focus on Supervised Learning.
机译:事物互联网促进了将大规模设备集成到网络中的集成,以提供越来越多的应用程序的数据。目前和未来的物联网申请持有承诺提高用户的便利性和舒适性,但易于各种类型的安全威胁,即拒绝服务(DOS),中间人,欺骗,干扰,窃听和软件攻击。因此,解决这些安全挑战是至关重要的。在本文中,我们讨论了在IOT层中存在的主要安全威胁,并审查基于机器学习的IOT安全系统,重点是监督学习。

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