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A Review of Testing Object-Based Environment Perception for Safe Automated Driving

Michael Hoss, Maike Scholtes, Lutz Eckstein

2022Automotive Innovation69 citationsDOIOpen Access PDF

Abstract

Abstract Safety assurance of automated driving systems must consider uncertain environment perception. This paper reviews literature addressing how perception testing is realized as part of safety assurance. The paper focuses on testing for verification and validation purposes at the interface between perception and planning, and structures the analysis along the three axes (1) test criteria and metrics, (2) test scenarios, and (3) reference data. Furthermore, the analyzed literature includes related safety standards, safety-independent perception algorithm benchmarking, and sensor modeling. It is found that the realization of safety-oriented perception testing remains an open issue since challenges concerning the three testing axes and their interdependencies currently do not appear to be sufficiently solved.

Topics & Concepts

PerceptionComputer scienceObject (grammar)PsychologyArtificial intelligenceNeuroscienceAutonomous Vehicle Technology and SafetyVideo Surveillance and Tracking MethodsHuman-Automation Interaction and Safety
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