Monocular 3D Hand Mesh Recovery via Dual Noise Estimation
Hanhui Li, Xiaojian Lin, Xuan Huang, Zejun Yang, Zhisheng Wang, Xiaodan Liang
摘要
Current parametric models have made notable progress in 3D hand pose and shape estimation. However, due to the fixed hand topology and complex hand poses, current models are hard to generate meshes that are aligned with the image well. To tackle this issue, we introduce a dual noise estimation method in this paper. Given a single-view image as input, we first adopt a baseline parametric regressor to obtain the coarse hand meshes. We assume the mesh vertices and their image-plane projections are noisy, and can be associated in a unified probabilistic model. We then learn the distributions of noise to refine mesh vertices and their projections. The refined vertices are further utilized to refine camera parameters in a closed-form manner. Consequently, our method obtains well-aligned and high-quality 3D hand meshes. Extensive experiments on the large-scale Inter-hand2.6M dataset demonstrate that the proposed method not only improves the performance of its baseline by more than 10% but also achieves state-of-the-art performance. Project page: https://github.com/hanhuili/DNE4Hand .
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它引用的顶会 Paper16
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- Interacting Two-Hand 3D Pose and Shape Reconstruction from Single Color ImageBaowen Zhang, Yangang Wang, Xiaoming Deng, Yinda Zhang 等ICCV 2021 · 被引用 114 次
- Interacting Attention Graph for Single Image Two-Hand ReconstructionMengcheng Li, Liang An, Hongwen Zhang, Lianpeng Wu 等CVPR 2022 · 被引用 112 次
- MobRecon: Mobile-Friendly Hand Mesh Reconstruction from Monocular ImageXingyu Chen, Yufeng Liu, Yajiao Dong, Xiong Zhang 等CVPR 2022 · 被引用 97 次
- Towards Accurate Alignment in Real-time 3D Hand-Mesh ReconstructionXiao Tang, Tianyu Wang, Chi-Wing FuICCV 2021 · 被引用 83 次
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