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THU-Warwick Submission for EPIC-KITCHEN Challenge 2025: Semi-Supervised Video Object Segmentation

THU-Warwick Submission for EPIC-KITCHEN Challenge 2025: Semi-Supervised Video Object Segmentation

来源:Arxiv_logoArxiv
英文摘要

In this report, we describe our approach to egocentric video object segmentation. Our method combines large-scale visual pretraining from SAM2 with depth-based geometric cues to handle complex scenes and long-term tracking. By integrating these signals in a unified framework, we achieve strong segmentation performance. On the VISOR test set, our method reaches a J&F score of 90.1%.

Mingqi Gao、Haoran Duan、Tianlu Zhang、Jungong Han

计算技术、计算机技术

Mingqi Gao,Haoran Duan,Tianlu Zhang,Jungong Han.THU-Warwick Submission for EPIC-KITCHEN Challenge 2025: Semi-Supervised Video Object Segmentation[EB/OL].(2025-06-07)[2025-06-27].https://arxiv.org/abs/2506.06748.点此复制

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