Hybrid Modelling for Anomaly Detection in Industrial Control Systems

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Publicado en:European Conference on Cyber Warfare and Security (Jun 2025), p. 52-61
Autor principal: Boerjan, Vincent
Otros Autores: Schivo, Stefano, Maathuis, Clara
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Academic Conferences International Limited
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Acceso en línea:Citation/Abstract
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100 1 |a Boerjan, Vincent 
245 1 |a Hybrid Modelling for Anomaly Detection in Industrial Control Systems 
260 |b Academic Conferences International Limited  |c Jun 2025 
513 |a Conference Proceedings 
520 3 |a This research addresses the challenge of anomaly detection in Industrial Control Systems (ICS), recognizing the increasing importance of cyber security in these environments due to recent incidents and evolving technical and regulatory frameworks and mechanisms introduced. It does that by proposing a comprehensive hybrid modelling approach to anomaly detection that bridges the gap between theoretical research and practical applications in real-world industrial settings. Specifically, this methodology focuses on generating a custom dataset for anomaly detection, avoiding the limitations associated with artificial datasets. It does that by merging expert-based formal modelling with Machine Learning (ML) modelling in a Model-Driven Engineering approach aiming at assuring the security and reliability of critical control systems from the transportation and logistics domains. This research contributes to these fields by offering a logical, traceable, and adaptable framework for anomaly detection in ICS, addressing the current challenges identified in literature and regulatory requirements. 
653 |a Machine learning 
653 |a Datasets 
653 |a Research methodology 
653 |a Blackouts 
653 |a Integrated circuits 
653 |a Modelling 
653 |a Cybersecurity 
653 |a Control systems 
653 |a Software engineering 
653 |a Compliance 
653 |a Anomalies 
653 |a Monitoring systems 
653 |a Industrial electronics 
653 |a Reliability 
653 |a Models 
653 |a Internet 
653 |a Security 
653 |a Logistics 
653 |a Regulation 
653 |a Research applications 
700 1 |a Schivo, Stefano 
700 1 |a Maathuis, Clara 
773 0 |t European Conference on Cyber Warfare and Security  |g (Jun 2025), p. 52-61 
786 0 |d ProQuest  |t Political Science Database 
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