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Effect of Imbalanced Datasets on Security of Industrial IoT Using Machine Learning | IEEE Conference Publication | IEEE Xplore

Effect of Imbalanced Datasets on Security of Industrial IoT Using Machine Learning


Abstract:

Machine learning algorithms have been shown to be suitable for securing platforms for IT systems. However, due to the fundamental differences between the industrial inter...Show More

Abstract:

Machine learning algorithms have been shown to be suitable for securing platforms for IT systems. However, due to the fundamental differences between the industrial internet of things (IIoT) and regular IT networks, a special performance review needs to be considered. The vulnerabilities and security requirements of IIoT systems demand different considerations. In this paper, we study the reasons why machine learning must be integrated into the security mechanisms of the IIoT, and where it currently falls short in having a satisfactory performance. The challenges and real-world considerations associated with this matter are studied in our experimental design. We use an IIoT testbed resembling a real industrial plant to show our proof of concept.
Date of Conference: 09-11 November 2018
Date Added to IEEE Xplore: 27 December 2018
ISBN Information:
Conference Location: Miami, FL, USA

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