Securing Internet of Things (IoT) with machine learning

Summary Advances in hardware, software, communication, embedding computing technologies along with their decreasing costs and increasing performance have led to the emergence of the Internet of Things (IoT) paradigm. Today, several billions of Internet‐connected devices are part of the IoT ecosystem...

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Veröffentlicht in:International journal of communication systems 2020-01, Vol.33 (1), p.n/a
Hauptverfasser: Zeadally, Sherali, Tsikerdekis, Michail
Format: Artikel
Sprache:eng
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Zusammenfassung:Summary Advances in hardware, software, communication, embedding computing technologies along with their decreasing costs and increasing performance have led to the emergence of the Internet of Things (IoT) paradigm. Today, several billions of Internet‐connected devices are part of the IoT ecosystem. IoT devices have become an integral part of the information and communication technology (ICT) infrastructure that supports many of our daily activities. The security of these IoT devices has been receiving a lot of attention in recent years. Another major recent trend is the amount of data that is being produced every day which has reignited interest in technologies such as machine learning and artificial intelligence. We investigate the potential of machine learning techniques in enhancing the security of IoT devices. We focus on the deployment of supervised, unsupervised learning techniques, and reinforcement learning for both host‐based and network‐based security solutions in the IoT environment. Finally, we discuss some of the challenges of machine learning techniques that need to be addressed in order to effectively implement and deploy them so that they can better protect IoT devices. Machine learning techniques can enhance the security of Internet of Things (IoT) devices. These machine learning solutions for IoT devices can be implemented at the network level or host level. However, to achieve optimal IoT security with these solutions, we need to take into consideration the specific characteristics (such as the operating environment and hardware constraints) of IoT devices.
ISSN:1074-5351
1099-1131
DOI:10.1002/dac.4169