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Papers/HandBooster: Boosting 3D Hand-Mesh Reconstruction by Condi...

HandBooster: Boosting 3D Hand-Mesh Reconstruction by Conditional Synthesis and Sampling of Hand-Object Interactions

Hao Xu, Haipeng Li, Yinqiao Wang, Shuaicheng Liu, Chi-Wing Fu

2024-03-27CVPR 2024 13D Hand Pose Estimation
PaperPDFCode(official)

Abstract

Reconstructing 3D hand mesh robustly from a single image is very challenging, due to the lack of diversity in existing real-world datasets. While data synthesis helps relieve the issue, the syn-to-real gap still hinders its usage. In this work, we present HandBooster, a new approach to uplift the data diversity and boost the 3D hand-mesh reconstruction performance by training a conditional generative space on hand-object interactions and purposely sampling the space to synthesize effective data samples. First, we construct versatile content-aware conditions to guide a diffusion model to produce realistic images with diverse hand appearances, poses, views, and backgrounds; favorably, accurate 3D annotations are obtained for free. Then, we design a novel condition creator based on our similarity-aware distribution sampling strategies to deliberately find novel and realistic interaction poses that are distinctive from the training set. Equipped with our method, several baselines can be significantly improved beyond the SOTA on the HO3D and DexYCB benchmarks. Our code will be released on https://github.com/hxwork/HandBooster_Pytorch.

Results

TaskDatasetMetricValueModel
HandHO-3D v2AUC_J0.836HandBooster
HandHO-3D v2AUC_V0.832HandBooster
HandHO-3D v2F@15mm0.972HandBooster
HandHO-3D v2F@5mm0.585HandBooster
HandHO-3D v2PA-MPJPE (mm)8.2HandBooster
HandHO-3D v2PA-MPVPE8.4HandBooster
Pose EstimationHO-3D v2AUC_J0.836HandBooster
Pose EstimationHO-3D v2AUC_V0.832HandBooster
Pose EstimationHO-3D v2F@15mm0.972HandBooster
Pose EstimationHO-3D v2F@5mm0.585HandBooster
Pose EstimationHO-3D v2PA-MPJPE (mm)8.2HandBooster
Pose EstimationHO-3D v2PA-MPVPE8.4HandBooster
Hand Pose EstimationHO-3D v2AUC_J0.836HandBooster
Hand Pose EstimationHO-3D v2AUC_V0.832HandBooster
Hand Pose EstimationHO-3D v2F@15mm0.972HandBooster
Hand Pose EstimationHO-3D v2F@5mm0.585HandBooster
Hand Pose EstimationHO-3D v2PA-MPJPE (mm)8.2HandBooster
Hand Pose EstimationHO-3D v2PA-MPVPE8.4HandBooster
3DHO-3D v2AUC_J0.836HandBooster
3DHO-3D v2AUC_V0.832HandBooster
3DHO-3D v2F@15mm0.972HandBooster
3DHO-3D v2F@5mm0.585HandBooster
3DHO-3D v2PA-MPJPE (mm)8.2HandBooster
3DHO-3D v2PA-MPVPE8.4HandBooster
3D Hand Pose EstimationHO-3D v2AUC_J0.836HandBooster
3D Hand Pose EstimationHO-3D v2AUC_V0.832HandBooster
3D Hand Pose EstimationHO-3D v2F@15mm0.972HandBooster
3D Hand Pose EstimationHO-3D v2F@5mm0.585HandBooster
3D Hand Pose EstimationHO-3D v2PA-MPJPE (mm)8.2HandBooster
3D Hand Pose EstimationHO-3D v2PA-MPVPE8.4HandBooster
1 Image, 2*2 StitchiHO-3D v2AUC_J0.836HandBooster
1 Image, 2*2 StitchiHO-3D v2AUC_V0.832HandBooster
1 Image, 2*2 StitchiHO-3D v2F@15mm0.972HandBooster
1 Image, 2*2 StitchiHO-3D v2F@5mm0.585HandBooster
1 Image, 2*2 StitchiHO-3D v2PA-MPJPE (mm)8.2HandBooster
1 Image, 2*2 StitchiHO-3D v2PA-MPVPE8.4HandBooster

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