遇见数据集

UniFGVC

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IEEE2026-04-17 收录
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We present a dataset of structured textual descriptions for visual categories, aimed at supporting fine-grained visual recognition and multimodal understanding. The dataset emphasizes category-level, discriminative attributes and semantic relations, rather than instance-specific or generic captions. By organizing descriptions in a structured format, it enables effective use as textual priors for retrieval, reasoning, and zero-shot or few-shot recognition, while reducing redundancy and hallucination. The dataset is model-agnostic and can be seamlessly integrated into various vision\u2013language frameworks, facilitating scalable category extension without additional training. This resource provides a practical benchmark for advancing fine-grained classification and multimodal learning.

提供机构:
Hongyu Guo
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