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Simulation-based Methods for the Validation of Highly Automated Driving

Jesenski, Stefan

Abstract:

In recent years, the automotive industry has striven to introduce automated driving functions (ADFs) of increasing complexity and capability. Traditional statistical validation methods like endurance runs, which were previously applied to prove automotive safety, reach their limits and become infeasible since society poses increasingly challenging safety demands to increasingly complex and capable ADFs. Simulations promise to deliver a valuable contribution to the resulting unsolved validation challenge, since they show beneficial properties like being reproducable, safe, controllable and fast. This thesis addresses some of the most pressing issues hindering the usage of simulations for validation purposes.

Firstly, a sufficiently well performing ADF fails seldomly. Hence, critical scenarios occur very rarely in statistical simulations and a high amount of simulation runs is needed to generate results with acceptable accuracy. Importance sampling (IS) was previously used to tackle this problem. IS skews the sampling of simulation runs to the areas of the parameter space which the ADF cannot handle, but allows determining unskewed statistical results. ... mehr


Volltext §
DOI: 10.5445/IR/1000189911
Veröffentlicht am 27.01.2026
Cover der Publikation
Zugehörige Institution(en) am KIT Institut für Angewandte Informatik und Formale Beschreibungsverfahren (AIFB)
Publikationstyp Hochschulschrift
Publikationsdatum 27.01.2026
Sprache Englisch
Identifikator KITopen-ID: 1000189911
Verlag Karlsruher Institut für Technologie (KIT)
Umfang xiii, 217 S.
Art der Arbeit Dissertation
Fakultät Fakultät für Wirtschaftswissenschaften (WIWI)
Institut Institut für Angewandte Informatik und Formale Beschreibungsverfahren (AIFB)
Prüfungsdatum 28.08.2025
Schlagwörter Importance Sampling, Simulation, automated driving
Referent/Betreuer Marius Zöllner, J.
Vortisch, Peter
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