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    Comparing deep neural networks to tree-based machine learning methods for anomaly detection in IIoT
    with Qing Tan and José R. Villar
    Logic Journal of the IGPL 34 (1). 2026.
    This paper investigates the application of machine learning methods for anomaly detection of both physical and cyber threats in Industrial Internet of Things (IIoT) environments, with a novel method of separating different threat classes, performing delegation of computationally inexpensive threshold-based metrics to a simple rules-based alerting system, while performing anomaly detection of the more complex behavioural-based metrics in a machine learning model. This hybrid approach of separatin…Read more
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