Adversarial Cross-Domain Action Recognition with Co-Attention
Boxiao Pan, Zhangjie Cao, Ehsan Adeli, Juan Carlos Niebles
摘要
Action recognition has been a widely studied topic with a heavy focus on supervised learning involving sufficient labeled videos. However, the problem of cross-domain action recognition, where training and testing videos are drawn from different underlying distributions, remains largely under-explored. Previous methods directly employ techniques for cross-domain image recognition, which tend to suffer from the severe temporal misalignment problem. This paper proposes a Temporal Co-attention Network (TCoN), which matches the distributions of temporally aligned action features between source and target domains using a novel cross-domain co-attention mechanism. Experimental results on three cross-domain action recognition datasets demonstrate that TCoN improves both previous single-domain and cross-domain methods significantly under the cross-domain setting.
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- Learning Cross-Modal Contrastive Features for Video Domain AdaptationDonghyun Kim, Yi-Hsuan Tsai, Bingbing Zhuang, Xiang Yu 等ICCV 2021 · 被引用 88 次
- Domain Adaptive Video Segmentation via Temporal Consistency RegularizationDayan Guan, Jiaxing Huang, Aoran Xiao, Shijian LuICCV 2021 · 被引用 44 次
- Unsupervised Curriculum Domain Adaptation for No-Reference Video Quality AssessmentPengfei Chen, Leida Li, Jinjian Wu, Weisheng Dong 等ICCV 2021 · 被引用 40 次
- Adversarial Bipartite Graph Learning for Video Domain AdaptationYadan Luo, Zi Huang, Zijian Wang, Zheng Zhang 等ACM MM 2020 · 被引用 40 次
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