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CVPR2025顶会

Universal Scene Graph Generation

Shengqiong Wu, Hao Fei, Tat-Seng Chua

2025年份
8顶会引用

摘要

associator to relieve the modality gap for cross-modal object alignment. Further, we propose a text-centric scene contrasting learning mechanism to mitigate domain imbalances by aligning multimodal objects and relations with textual SGs. Through extensive experiments, we demonstrate that USG offers a stronger capability for expressing scene semantics than standalone SGs, and also that our USG-Par achieves higher efficacy and performance. The project page is https://sqwu.top/USG/ .

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