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20242026
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cs.RO2026

PRISM: Privileged Probabilistic Latent Supervision for End-to-End Autonomous Driving Motion Planning

Volodymyr Havrylov, Faris Janjoš, Andreas Look +2

End-to-end autonomous driving (E2E AD) systems integrate perception, prediction, and planning into a single differentiable architecture. While these models show great promise, thei…

cs.RO2026

Fail2Drive: Benchmarking Closed-Loop Driving Generalization

Simon Gerstenecker, Andreas Geiger, Katrin Renz

Generalization under distribution shift remains a central bottleneck for closed-loop autonomous driving. Although simulators like CARLA enable safe and scalable testing, existing b…

cs.RO2026

Pseudo-Simulation for Autonomous Driving

Wei Cao, Marcel Hallgarten, Tianyu Li +11

Existing evaluation paradigms for Autonomous Vehicles (AVs) face critical limitations. Real-world evaluation is often challenging due to safety concerns and a lack of reproducibili…

cs.RO2025

PlanT 2.0: Exposing Biases and Structural Flaws in Closed-Loop Driving

Simon Gerstenecker, Andreas Geiger, Katrin Renz

Most recent work in autonomous driving has prioritized benchmark performance and methodological innovation over in-depth analysis of model failures, biases, and shortcut learning.…

cs.RO2025

Centaur: Robust End-to-End Autonomous Driving with Test-Time Training

Chonghao Sima, Kashyap Chitta, Zhiding Yu +5

How can we rely on an end-to-end autonomous vehicle's complex decision-making system during deployment? One common solution is to have a ``fallback layer'' that checks the planned…