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S3D: Stacking Segmental P3D for Action Quality Assessment
- Citation Author(s):
- Submitted by:
- Xiang Xiang
- Last updated:
- 5 October 2018 - 2:08am
- Document Type:
- Presentation Slides
- Document Year:
- 2018
- Event:
- Presenters:
- Xiang Xiang; Trac D. Tran
- Paper Code:
- WQ.L1.4
- Categories:
- Keywords:
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Action quality assessment is crucial in areas of sports, surgery and assembly line where action skills can be evaluated. In this paper, we propose the Segment-based P3D-fused network S3D built-upon ED-TCN and push the performance on the UNLV-Dive dataset by a significant margin. We verify that segment-aware training performs better than full-video training which turns out to focus on the water spray. We show that temporal segmentation can be embedded with few efforts.
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Sportradar, Gracenote, Sportlogiq, Signality...
There're business cases to automatically suggest scores for Winter Olympic skating videos and Summer Olympic diving videos.