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Bench2Drive-VL: Benchmarks for Closed-Loop Autonomous Driving with Vision-Language Models

Description

With the rise of vision-language models (VLM), their application for autonomous driving (VLM4AD) has gained significant attention. Meanwhile, in autonomous driving, closed-loop evaluation has become widely recognized as a more reliable validation method than open-loop evaluation, as it can evaluate the performance of the model under cumulative errors and out-of-distribution inputs. However, existing VLM4AD benchmarks evaluate the model`s scene understanding ability under open-loop, i.e., via sta

Source

http://arxiv.org/abs/2604.01259v1