Keypoint Communities
Duncan Zauss, Sven Kreiss, Alexandre Alahi
摘要
We present a fast bottom-up method that jointly detects over 100 keypoints on humans or objects, also referred to as human/object pose estimation. We model all keypoints belonging to a human or an object –the pose– as a graph and leverage insights from community detection to quantify the independence of keypoints. We use a graph centrality measure to assign training weights to different parts of a pose. Our proposed measure quantifies how tightly a keypoint is connected to its neighborhood. Our experiments show that our method outperforms all previous methods for human pose estimation with fine-grained keypoint annotations on the face, the hands and the feet with a total of 133 keypoints. We also show that our method generalizes to car poses.
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引用它的顶会 Paper3
- Whose Hands are These? Hand Detection and Hand-Body Association in the WildSupreeth Narasimhaswamy, Thanh Nguyen, Mingzhen Huang, Minh HoaiCVPR 2022 · 被引用 17 次
- PBADet: A One-Stage Anchor-Free Approach for Part-Body AssociationZhongpai Gao, Huayi Zhou, Abhishek Sharma, Meng Zheng 等ICLR 2024 · 被引用 2 次
- Incremental Object Keypoint LearningMingfu Liang, Jiahuan Zhou, Xu Zou, Ying WuCVPR 2025
它引用的顶会 Paper1
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