Learning Implicit Representation for Reconstructing Articulated Objects
Hao Zhang, Fang Li, Samyak Rawlekar, Narendra Ahuja
Abstract
3D Reconstruction of moving articulated objects without additional information about object structure is a challenging problem. Current methods overcome such challenges by employing category-specific skeletal models. Consequently, they do not generalize well to articulated objects in the wild. We treat an articulated object as an unknown, semi-rigid skeletal structure surrounded by nonrigid material (e.g., skin). Our method simultaneously estimates the visible (explicit) representation (3D shapes, colors, camera parameters) and the implicit skeletal representation, from motion cues in the object video without 3D supervision. Our implicit representation consists of four parts. (1) Skeleton, which specifies how semi-rigid parts are connected. (2) Skinning Weights, which associates each surface vertex with semi-rigid parts with probability. (3) Rigidity Coefficients, specifying the articulation of the local surface. (4) Time-Varying Transformations, which specify the skeletal motion and surface deformation parameters. We introduce an algorithm that uses physical constraints as regularization terms and iteratively estimates both implicit and explicit representations. Our method is category-agnostic, thus eliminating the need for category-specific skeletons, we show that our method outperforms state-of-the-art across standard video datasets. * Code can be found here https://haoz19.github.io/ 1
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Install the CLIlune papers fulltext 73a9c88e-41e5-4e5b-ac05-332853bdf6ccCited by top-tier papers7
- S3O: A Dual-Phase Approach for Reconstructing Dynamic Shape and Skeleton of Articulated Objects from Single Monocular VideoHao Zhang, Fang Li, Samyak Rawlekar, Narendra AhujaICML 2024 · 13 citations
- Stable Part Diffusion 4D: Multi-View RGB and Kinematic Parts Video GenerationHao Zhang, Chun-Han Yao, Simon Donné, Narendra Ahuja et al.NeurIPS 2025 · 8 citations
- Auto-Connect: Connectivity-Preserving RigFormer with Direct Preference OptimizationJingfeng Guo, Jian Liu, Jinnan Chen, Shiwei Mao et al.NeurIPS 2025 · 8 citations
- RigMo: Unifying Rig and Motion Learning for Generative AnimationHao Zhang, Jiahao Luo, Bohui Wan, Yizhou Zhao et al.CVPR 2026 · 6 citations
- PhysRig: Differentiable Physics-Based Skinning and Rigging Framework for Realistic Articulated Object ModelingHao Zhang, Haolan Xu, Chun Feng, Varun Jampani et al.ICCV 2025 · 3 citations
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- NeuS: Learning Neural Implicit Surfaces by Volume Rendering for Multi-view ReconstructionPeng Wang, Lingjie Liu, Yuan Liu, Christian Theobalt et al.NeurIPS 2021 · 2,500 citations
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- Non-Rigid Neural Radiance Fields: Reconstruction and Novel View Synthesis of a Dynamic Scene From Monocular VideoEdgar Tretschk, Ayush Tewari, Vladislav Golyanik, Michael Zollhöfer et al.ICCV 2021 · 617 citations
- HumanNeRF: Free-viewpoint Rendering of Moving People from Monocular VideoChung-Yi Weng, Brian Curless, Pratul P. Srinivasan, Jonathan T. Barron et al.CVPR 2022 · 411 citations
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