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Understanding Autonomous Driving Datasets by Describing Differences between Image Subsets in Natural Language

arXiv · AI, language, vision and robotics · article · Sep 3, 2026 · UTC

Understanding the composition of large-scale autonomous driving datasets is essential for safety, robustness, and reliable operation across domains. For example, domain shift between locations could lead to the operating environment being misaligned with the training data, resulting in potentially dangerous performance degradation. Yet, existing data analysis pipelines largely rely on metadata, predefined labels, or manual inspection, which provide limited semantic insight or do not scale. This paper studies set difference captioning: given two subsets of images, the goal is to produce a natur

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First collected: 2026-09-21T04:51:57.792Z. This is not the publication date.