HandFoldingNet: A 3D Hand Pose Estimation Network Using Multiscale-Feature Guided Folding of a 2D Hand Skeleton
Wencan Cheng, Jae Hyun Park, Jong Hwan Ko
Abstract
With increasing applications of 3D hand pose estimation in various human-computer interaction applications, convolution neural networks (CNNs) based estimation models have been actively explored. However, the existing models require complex architectures or redundant computational resources to trade with the acceptable accuracy. To tackle this limitation, this paper proposes HandFoldingNet, an accurate and efficient hand pose estimator that regresses the hand joint locations from the normalized 3D hand point cloud input. The proposed model utilizes a folding-based decoder that folds a given 2D hand skeleton into the corresponding joint coordinates. For higher estimation accuracy, folding is guided by multi-scale features, which include both global and joint-wise local features. Experimental results show that the proposed model outperforms the existing methods on three hand pose benchmark datasets with the lowest model parameter requirement. Code is available at https://github.com/cwc1260/HandFold .
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Cited by top-tier papers6
- Tracking and Reconstructing Hand Object Interactions from Point Cloud Sequences in the WildJiayi Chen, Mi Yan, Jiazhao Zhang, Yinzhen Xu et al.AAAI 2023 · 26 citations
- OCHID-Fi: Occlusion-Robust Hand Pose Estimation in 3D via RF-VisionShujie Zhang, Tianyue Zheng, Zhe Chen, Jingzhi Hu et al.ICCV 2023 · 11 citations
- HandR2N2: Iterative 3D Hand Pose Estimation Using a Residual Recurrent Neural NetworkWencan Cheng, Jong Hwan KoICCV 2023 · 9 citations
- HandMCM: Multi-modal Point Cloud-based Correspondence State Space Model for 3D Hand Pose EstimationWencan Cheng, Gim Hee LeeAAAI 2026
- HandDiff: 3D Hand Pose Estimation with Diffusion on Image-Point CloudWencan Cheng, Hao Tang, Luc Van Gool, Jong Hwan KoCVPR 2024
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