HEMlets Pose: Learning Part-Centric Heatmap Triplets for Accurate 3D Human Pose Estimation
Kun Zhou, Xiaoguang Han, Nianjuan Jiang, Kui Jia, Jiangbo Lu
摘要
Estimating 3D human pose from a single image is a challenging task. This work attempts to address the uncertainty of lifting the detected 2D joints to the 3D space by introducing an intermediate state - Part-Centric Heatmap Triplets (HEMlets), which shortens the gap between the 2D observation and the 3D interpretation. The HEMlets utilize three joint-heatmaps to represent the relative depth information of the end-joints for each skeletal body part. In our approach, a Convolutional Network(ConvNet) is first trained to predict HEMlests from the input image, followed by a volumetric joint-heatmap regression. We leverage on the integral operation to extract the joint locations from the volumetric heatmaps, guaranteeing end-to-end learning. Despite the simplicity of the network design, the quantitative comparisons show a significant performance improvement over the best-of-grade method (by 20% on Human3.6M). The proposed method naturally supports training with "in-the-wild'' images, where only weakly-annotated relative depth information of skeletal joints is available. This further improves the generalization ability of our model, as validated by qualitative comparisons on outdoor images.
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引用它的顶会 Paper23
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- A-NeRF: Articulated Neural Radiance Fields for Learning Human Shape, Appearance, and PoseShih-Yang Su, Frank Yu, Michael Zollhöfer, Helge RhodinNeurIPS 2021 · 被引用 316 次
- Human Pose Regression with Residual Log-likelihood EstimationJiefeng Li, Siyuan Bian, Ailing Zeng, Can Wang 等ICCV 2021 · 被引用 286 次
- GLA-GCN: Global-local Adaptive Graph Convolutional Network for 3D Human Pose Estimation from Monocular VideoBruce X. B. Yu, Zhi Zhang, Yongxu Liu, Sheng-Hua Zhong 等ICCV 2023 · 被引用 131 次
- Pose-Oriented Transformer with Uncertainty-Guided Refinement for 2D-to-3D Human Pose EstimationHan Li, Bowen Shi, Wenrui Dai, Hongwei Zheng 等AAAI 2023 · 被引用 76 次
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