Simple Pose: Rethinking and Improving a Bottom-up Approach for Multi-Person Pose Estimation
Jia Li, Wen Su, Zengfu Wang
Abstract
We rethink a well-known bottom-up approach for multi-person pose estimation and propose an improved one. The improved approach surpasses the baseline significantly thanks to (1) an intuitional yet more sensible representation, which we refer to as body parts to encode the connection information between keypoints, (2) an improved stacked hourglass network with attention mechanisms, (3) a novel focal L2 loss which is dedicated to “hard” keypoint and keypoint association (body part) mining, and (4) a robust greedy keypoint assignment algorithm for grouping the detected keypoints into individual poses. Our approach not only works straightforwardly but also outperforms the baseline by about 15% in average precision and is comparable to the state of the art on the MS-COCO test-dev dataset. The code and pre-trained models are publicly available on our project page1.
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Cited by top-tier papers13
- Online Knowledge Distillation for Efficient Pose EstimationZheng Li, Jingwen Ye, Mingli Song, Ying Huang et al.ICCV 2021 · 123 citations
- Learning Local-Global Contextual Adaptation for Multi-Person Pose EstimationNan Xue, Tianfu Wu, Gui-Song Xia, Liangpei ZhangCVPR 2022 · 42 citations
- MoCapAnything: Unified 3D Motion Capture for Arbitrary Skeletons from Monocular VideosKehong Gong, Zhengyu Wen, Xiaoyu He, Mingxi Xu et al.CVPR 2026 · 8 citations
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- Seeing Beyond the Crop: Using Language Priors for Out-of-Bounding Box Keypoint PredictionBavesh Balaji, Jerrin Bright, Yuhao Chen, Sirisha Rambhatla et al.NeurIPS 2024 · 4 citations
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