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Machine Learning in IoT Security: Current Solutions and Future Challenges

delete2020-01-01
delete260
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OA
AI
F
Fatima Hussain
R
Rasheed Hussain
S
Syed Ali Hassan
E
Ekram Hossain *
DOI:10.1109/COMST.2020.2986444delete
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Abstract

Abstract

En 中文
The future Internet of Things (IoT) will have a deep economical, commercial and social impact on our lives. The participating nodes in IoT networks are usually resource-constrained, which makes them luring targets for cyber attacks. In this regard, extensive efforts have been made to address the security and privacy issues in IoT networks primarily through traditional cryptographic approaches. However, the unique characteristics of IoT nodes render the existing solutions insufficient to encompass the entire security spectrum of the IoT networks. Machine Learning (ML) and Deep Learning (DL) techniques, which are able to provide embedded intelligence in the IoT devices and networks, can be leveraged to cope with different security problems. In this paper, we systematically review the security requirements, attack vectors, and the current security solutions for the IoT networks. We then shed light on the gaps in these security solutions that call for ML and DL approaches. Finally, we discuss in detail the existing ML and DL solutions for addressing different security problems in IoT networks. We also discuss several future research directions for ML- and DL-based IoT security.
Keywords:
Security
Privacy
Machine learning
Sensors
Electronic mail
Tutorials
Internet of Things
Internet of Things (IoT)
IoT applications
security
attacks
privacy
machine learning
deep learning

Journal

I
IEEE Communications Surveys and Tutorials
IF:
46.7
Papers:
1.5K
Citations:
3.3W

Organization

N
national university of sciences & technology - pakistan
Scholars:
7.8K
Papers: 6.6K
Citations: 6
U
University of Manitoba
Scholars:
1.9W
Papers: 1.7W
Citations: 18
I
Innopolis University
Scholars:
305
Papers: 246
Citations: 139
B
Bank of Canada
Scholars:
235
Papers: 259
Citations: 0
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