Distill Knowledge From NRSfM for Weakly Supervised 3D Pose Learning
Chaoyang Wang, Chen Kong, Simon Lucey
摘要
We propose to learn a 3D pose estimator by distilling knowledge from Non-Rigid Structure from Motion (NRSfM). Our method uses solely 2D landmark annotations. No 3D data, multi-view/temporal footage, or object specific prior is required. This alleviates the data bottleneck, which is one of the major concern for supervised methods. The challenge for using NRSfM as teacher is that they often make poor depth reconstruction when the 2D projections have strong ambiguity. Directly using those wrong depth as hard target would negatively impact the student. Instead, we propose a novel loss that ties depth prediction to the cost function used in NRSfM. This gives the student pose estimator freedom to reduce depth error by associating with image features. Validated on H3.6M dataset, our learned 3D pose estimation network achieves more accurate reconstruction compared to NRSfM methods. It also outperforms other weakly supervised methods, in spite of using significantly less supervision.
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引用它的顶会 Paper11
- SDF-SRN: Learning Signed Distance 3D Object Reconstruction from Static ImagesChen-Hsuan Lin, Chaoyang Wang, Simon LuceyNeurIPS 2020 · 被引用 125 次
- Online Knowledge Distillation for Efficient Pose EstimationZheng Li, Jingwen Ye, Mingli Song, Ying Huang 等ICCV 2021 · 被引用 123 次
- Estimating Egocentric 3D Human Pose in the Wild with External Weak SupervisionJian Wang, Lingjie Liu, Weipeng Xu, Kripasindhu Sarkar 等CVPR 2022 · 被引用 33 次
- Invariant Teacher and Equivariant Student for Unsupervised 3D Human Pose EstimationChenxin Xu, Siheng Chen, Maosen Li, Ya ZhangAAAI 2021 · 被引用 20 次
- Deductive Learning for Weakly-Supervised 3D Human Pose Estimation via Uncalibrated CamerasXipeng Chen, Pengxu Wei, Liang LinAAAI 2021 · 被引用 14 次
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