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Driving on Memory

arXiv · AI, language, vision and robotics · article · Aug 31, 2026 · UTC

End-to-end autonomous driving models plan future trajectories from raw sensor input. While earlier driving benchmarks often measured deviation from the human trajectory, current benchmarks such as NAVSIM and Bench2Drive evaluate models with richer simulation-based metrics intended to capture safe and compliant driving. A high benchmark score should reflect that a model can understand the scene in front of it and act accordingly. But how much of that score specifically comes from reacting to the dynamic part of that scene? To probe this, we remove a model's camera input and replace it with memo

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Evidence & attribution

First collected: 2026-09-21T06:41:57.136Z. This is not the publication date.