Papers › Attention Distillation for Learning Video Representations
Attention Distillation for Learning Video Representations
Miao Liu, Xin Chen, Yun Zhang, Yin Li, James M. Rehg
We address the challenging problem of learning motion representations using deep models for video recognition. To this end, we make use of attention modules that learn to highlight regions in the video and aggregate features for recognition. Specifically, we propose to leverage output attention maps as a vehicle to transfer the learned representation from a motion (flow) network to an RGB network. We systematically study the design of attention modules, and develop a novel method for attention distillation. Our method is evaluated on major action benchmarks, and consistently improves the performance of the baseline RGB network by a significant margin. Moreover, we demonstrate that our attention maps can leverage motion cues in learning to identify the location of actions in video frames. We believe our method provides a step towards learning motion-aware representations in deep models. Our project page is available at https://aptx4869lm.github.io/AttentionDistillation/
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Tasks
Results from the paper archive 2025-07-28
| Task | Dataset | Model | Metric | Value | Rank at snapshot | Leaderboard | Report |
|---|---|---|---|---|---|---|---|
| Action Recognition | HMDB-51 | Prob-Distill | Average accuracy of 3 splits | 72.0 | #49 of 77 | Archive leaderboard | report |
| Action Recognition | Something-Something V2 | Prob-Distill | Top-1 Accuracy | 49.9 | #117 of 123 | Archive leaderboard | report |
| Action Recognition | Something-Something V2 | Prob-Distill | Top-5 Accuracy | 79.1 | #117 of 123 | Archive leaderboard | report |
| Action Recognition | UCF101 | Prob-Distill | 3-fold Accuracy | 95.7 | #42 of 91 | Archive leaderboard | report |
Ranks are positions in the archive's leaderboards as they stood at the 2025-07-28 snapshot. Results published since then are not among these rows, so a rank here is not a current standing.
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