Collaborative Learning for Hand and Object Reconstruction with Attention-guided Graph Convolution
Tze Ho Elden Tse, Kwang In Kim, Ales Leonardis, Hyung Jin Chang
摘要
Estimating the pose and shape of hands and objects under interaction finds numerous applications including aug-mented and virtual reality. Existing approaches for hand and object reconstruction require explicitly defined physical constraints and known objects, which limits its application domains. Our algorithm is agnostic to object models, and it learns the physical rules governing hand-object interaction. This requires automatically inferring the shapes and physi-cal interaction of hands and (potentially unknown) objects. We seek to approach this challenging problem by proposing a collaborative learning strategy where two-branches of deep networks are learning from each other. Specifically, we transfer hand mesh information to the object branch and vice versa for the hand branch. The resulting optimi-sation (training) problem can be unstable, and we address this via two strategies: (i) attention-guided graph convo-lution which helps identify and focus on mutual occlusion and (ii) unsupervised associative loss which facilitates the transfer of information between the branches. Experiments using four widely-used benchmarks show that our frame-work achieves beyond state-of-the-art accuracy in 3D pose estimation, as well as recovers dense 3D hand and object shapes. Each technical component above contributes meaningfully in the ablation study.
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引用它的顶会 Paper30
- Hamba: Single-view 3D Hand Reconstruction with Graph-guided Bi-Scanning MambaHaoye Dong, Aviral Chharia, Wenbo Gou, Francisco Vicente Carrasco 等NeurIPS 2024 · 被引用 73 次
- Dual Label-Guided Graph Refinement for Multi-View Graph ClusteringYawen Ling, Jianpeng Chen, Yazhou Ren, Xiaorong Pu 等AAAI 2023 · 被引用 53 次
- DiffPose: SpatioTemporal Diffusion Model for Video-Based Human Pose EstimationRunyang Feng, Yixing Gao, Tze Ho Elden Tse, Xueqing Ma 等ICCV 2023 · 被引用 46 次
- Two Heads Are Better than One: Image-Point Cloud Network for Depth-Based 3D Hand Pose EstimationPengfei Ren, Yuchen Chen, Jiachang Hao, Haifeng Sun 等AAAI 2023 · 被引用 28 次
- Novel-view Synthesis and Pose Estimation for Hand-Object Interaction from Sparse ViewsWentian Qu, Zhaopeng Cui, Yinda Zhang, Chenyu Meng 等ICCV 2023 · 被引用 26 次
它引用的顶会 Paper16
- Exploiting Spatial-Temporal Relationships for 3D Pose Estimation via Graph Convolutional NetworksYujun Cai, Liuhao Ge, Jun Liu, Jianfei Cai 等ICCV 2019 · 被引用 504 次
- FreiHAND: A Dataset for Markerless Capture of Hand Pose and Shape From Single RGB ImagesChristian Zimmermann, Duygu Ceylan, Jimei Yang, Bryan C. Russell 等ICCV 2019 · 被引用 493 次
- End-to-End Hand Mesh Recovery From a Monocular RGB ImageXiong Zhang, Qiang Li, Hong Mo, Wenbo Zhang 等ICCV 2019 · 被引用 248 次
- MEgATrack: monochrome egocentric articulated hand-tracking for virtual realityShangchen Han, Beibei Liu, Randi Cabezas, Christopher D. Twigg 等SIGGRAPH 2020 · 被引用 207 次
- Reconstructing Hand-Object Interactions in the WildZhe Cao, Ilija Radosavovic, Angjoo Kanazawa, Jitendra MalikICCV 2021 · 被引用 184 次
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