Publication | Open Access
Practical Solutions for Machine Learning Safety in Autonomous Vehicles
51
Citations
35
References
2019
Year
Artificial IntelligenceAi ReliabilityEngineering SafetyMachine Learning SafetyMachine LearningEngineeringAutonomous VehiclesMachine Learning ToolAi SafetySystems EngineeringComputer ScienceIntelligent SystemsRobot LearningAutonomous SystemsAutonomous DrivingAi Safety Education
Autonomous vehicles rely on machine learning to solve challenging tasks in perception and motion planning. However, automotive software safety standards have not fully evolved to address the challenges of machine learning safety such as interpretability, verification, and performance limitations. In this paper, we review and organize practical machine learning safety techniques that can complement engineering safety for machine learning based software in autonomous vehicles. Our organization maps safety strategies to state-of-the-art machine learning techniques in order to enhance dependability and safety of machine learning algorithms. We also discuss security limitations and user experience aspects of machine learning components in autonomous vehicles.
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