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An anomaly-based approach for cyber–physical threat detection using network and sensor data

Roberto Canonico, Giovanni Esposito, Annalisa Navarro, Simon Pietro Romano, Giancarlo Sperlí, Andrea Vignali

2025Computer Communications7 citationsDOIOpen Access PDF

Abstract

Integrating physical and cyber realms, Cyber–Physical Systems (CPSs) expand the potential attack surface for intruders. Given their deployment in critical infrastructures like Industrial Control Systems (ICSs), ensuring robust security is imperative. Current research has developed various Intrusion Detection techniques to identify and counter malicious activities. However, traditional methods often encounter challenges in detecting several attack types due to reliance on a single data source such as time series data from sensors and actuators. In this study, we meticulously design advanced Deep Learning (DL) anomaly-based techniques trained on either sensor/actuator data or network traffic statistics in an unsupervised setting. We evaluate these techniques on network and physical data collected concurrently from a real-world CPS. Through meticulous hyperparameter tuning, we identify the optimal parameters for each model and compare their efficiency and effectiveness in detecting different types of attacks. In addition to demonstrating superior performance compared to various baselines, we showcase the best model for each data source. Eventually, we show how utilizing diverse data sources can enhance cyber-threat detection, recognizing different kinds of attacks. • We design DL anomaly-based techniques trained on either sensor or network data. • We evaluate techniques on different data sources collected from a real-world CPS. • After hyperparameter tuning, we compare the models’ attack detection ability. • We demonstrate superior performance compared to state-of-the-art base-lines. • We show how utilizing diverse data sources can enhance cyber-threat detection.

Topics & Concepts

Computer scienceAnomaly detectionCyber-physical systemWireless sensor networkAnomaly (physics)Computer securityData miningReal-time computingComputer networkOperating systemPhysicsCondensed matter physicsNetwork Security and Intrusion DetectionAnomaly Detection Techniques and ApplicationsSmart Grid Security and Resilience