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Boosting industrial internet of things intrusion detection: leveraging machine learning and feature selection techniques

Idouglid, LahcenTkatek, SaidElfayq, Khalid
IAES International Journal of Artificial Intelligence (IJ-AI) (Sinta 1)Vol. 0 No. 01 April 2025
DOI10.11591/ijai.v14.i2.pp1232-1241

Abstrak

The rapid integration of industrial internet of things (IIoT) technologies into Industry 4.0 has revolutionized industrial efficiency and automation, but it has also exposed critical vulnerabilities to cyber threats. This paper delves into a comprehensive evaluation of machine learning (ML) classifiers for detecting anomalies in IIoT environments. By strategically applying feature selection techniques, we demonstrate significant enhancements in both the accuracy and efficiency of these classifiers. Our findings reveal that feature selection not only boosts detection rates but also minimizes computational demands, making it a cornerstone for developing resilient intrusion detection systems (IDS) tailored for Industry 4.0. The insights garnered from this study pave the way for deploying more robust security frameworks, safeguarding the integrity and reliability of IIoT infrastructures in modern industrial settings.

Kata Kunci

AI, IIoT, IDS, Machine Learning, Feature engeneeringAnomaly detectionFeature selectionIndustrial internet of things securityIndustry 4.0Intrusion detectionMachine learning

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Boosting industrial internet of things intrusion detection: leveraging machine learning and feature selection techniques | IAES International Journal of Artificial Intelligence (IJ-AI) | Publiora