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Securing Internet of Things (IoT) with machine learning

机译:通过机器学习保护物联网(IoT)

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摘要

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.
机译:硬件,软件,通信,嵌入式计算技术的进步,以及它们不断降低的成本和性能的提高,导致了物联网(IoT)范式的出现。如今,数十亿互联网连接设备已成为物联网生态系统的一部分。物联网设备已成为支持我们许多日常活动的信息和通信技术(ICT)基础设施的组成部分。近年来,这些物联网设备的安全性受到了很多关注。最近的另一个主要趋势是每天产生的数据量重新激发了对机器学习和人工智能等技术的兴趣。我们研究了机器学习技术在增强IoT设备安全性方面的潜力。我们专注于在物联网环境中为基于主机和基于网络的安全解决方案部署有监督,无监督的学习技术以及强化学习。最后,我们讨论了机器学习技术的一些挑战,这些挑战需要解决才能有效实施和部署它们,以便它们可以更好地保护IoT设备。

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