Audio-Adaptive Activity Recognition Across Video Domains
| Authors |
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| Publication date | 2022 |
| Book title | 2022 IEEE/CVF Conference on Computer Vision and Pattern Recognition |
| Book subtitle | New Orleans, Louisiana, 19-24 June 2022 : proceedings |
| ISBN |
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| ISBN (electronic) |
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| Series | CVPR |
| Event | 2022 IEEE/CVF Conference on Computer Vision and Pattern Recognition, CVPR 2022 |
| Pages (from-to) | 13781-13790 |
| Publisher | Los Alamitos, California: IEEE Computer Society |
| Organisations |
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| Abstract |
This paper strives for activity recognition under domain shift, for example caused by change of scenery or camera viewpoint. The leading approaches reduce the shift in activity appearance by adversarial training and self-supervised learning. Different from these vision-focused works we leverage activity sounds for domain adaptation as they have less variance across domains and can reliably indicate which activities are not happening. We propose an audio-adaptive encoder and associated learning methods that discriminatively adjust the visual feature representation as well as addressing shifts in the semantic distribution. To further eliminate domain-specific features and include domain-invariant activity sounds for recognition, an audio-infused recognizer is proposed, which effectively models the cross-modal interaction across domains. We also introduce the new task of actor shift, with a corresponding audio-visual dataset, to challenge our method with situations where the activity appearance changes dramatically. Experiments on this dataset, EPIC-Kitchens and CharadesEgo show the effectiveness of our approach.
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| Document type | Conference contribution |
| Note | With supplementary file |
| Language | English |
| Related dataset | ActorShift.zip |
| Published at | https://doi.org/10.48550/arXiv.2203.14240 https://doi.org/10.1109/CVPR52688.2022.01342 |
| Published at | https://openaccess.thecvf.com/content/CVPR2022/html/Zhang_Audio-Adaptive_Activity_Recognition_Across_Video_Domains_CVPR_2022_paper.html |
| Other links | https://xiaobai1217.github.io/DomainAdaptation https://www.proceedings.com/65666.html |
| Downloads |
Zhang_Audio-Adaptive_Activity_Recognition_Across_Video_Domains_CVPR_2022_paper
(Accepted author manuscript)
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| Supplementary materials | |
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