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CMTM: Cross-Modal Token Modulation for Unsupervised Video Object Segmentation
April 16, 2026 ยท Grace Period ยท ๐ IEEE ICIP 2025
Authors
Inseok Jeon, Suhwan Cho, Minhyeok Lee, Seunghoon Lee, Minseok Kang, Jungho Lee, Chaewon Park, Donghyeong Kim, Sangyoun Lee
arXiv ID
2604.14630
Category
cs.CV: Computer Vision
Cross-listed
cs.LG
Citations
0
Venue
IEEE ICIP 2025
Abstract
Recent advances in unsupervised video object segmentation have highlighted the potential of two-stream architectures that integrate appearance and motion cues. However, fully leveraging these complementary sources of information requires effectively modeling their interdependencies. In this paper, we introduce cross-modality token modulation, a novel approach designed to strengthen the interaction between appearance and motion cues. Our method establishes dense connections between tokens from each modality, enabling efficient intra-modal and inter-modal information propagation through relation transformer blocks. To improve learning efficiency, we incorporate a token masking strategy that addresses the limitations of relying solely on increased model complexity. Our approach achieves state-of-the-art performance across all public benchmarks, outperforming existing methods.
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