2019 Third IEEE International Conference on Robotic Computing (IRC) · 2019 · 19 citations · 19 references
Anomaly DetectionEngineeringInformation SecurityInformation ForensicsAdvanced Driver-assistance SystemVideo SurveillanceVisual SurveillanceImage AnalysisPattern RecognitionCamera NetworkSystems EngineeringCps SecurityMachine VisionIntrusion Detection SystemAutomotive SecurityComputer ScienceData SecurityComputer VisionRobot Operating SystemReal-time Attack DetectionSecurity Flaws
The Robot Operating System (ROS) are being deployed for multiple life critical activities such as self-driving cars, drones, and industries. However, the security has been persistently neglected, especially the image flows incoming from camera robots. In this paper, we perform a structured security assessment of robot cameras using ROS. We points out a relevant number of security flaws that can be used to take over the flows incoming from the robot cameras. Furthermore, we propose an intrusion detection system to detect abnormal flows. Our defense approach is based on images comparisons and unsupervised anomaly detection method. We experiment our approach on robot cameras embedded on a self-driving car.
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Artificial Intelligence, Geometric Learning, Convolutional Neural Network +14
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