SYSYMar 3

Safety-Centered Scenario Generation for Autonomous Vehicles

arXiv:2603.03574h-index: 1
Originality Synthesis-oriented
AI Analysis

This work addresses the need for systematic and scalable safety testing in autonomous vehicles, though it is incremental by integrating existing simulation and safety engineering principles.

The paper tackles the problem of validating safety features for autonomous vehicles by developing a scenario generation framework that creates diverse and safety-critical driving situations in simulation, resulting in quantitative safety metrics like time-to-collision and minimum distance to evaluate performance.

This paper presents a scenario generation framework that creates diverse, parametrized, and safety-critical driving situations to validate the safety features of autonomous vehicles in simulation [15]. By modeling factors such as road geometry, traffic participants, environmental conditions, and perception uncertainties, the framework enables repeatable and scalable testing of safety mechanisms, including emergency braking, evasive maneuvers, and vulnerable road user protection. The framework supports both regulatory and edge case scenarios, mapped to hazards and safety goals derived from Hazard Analysis and Risk Assessment (HARA), ensuring traceability to ISO 26262 functional safety requirements and performance limitations. The output from these simulations provides quantitative safety metrics such as time-to-collision, minimum distance, braking and steering performance, and residual collision severity. These metrics enable the systematic evaluation of evasive maneuvering as a safety feature, while highlighting system limitations and edge-case vulnerabilities. Integration of scenario-based simulation with safety engineering principles offers accelerated validation cycles, improved test coverage at reduced cost, and stronger evidence for regulatory and stakeholder confidence.

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