Building Interactable Replicas of Complex Articulated Objects via Gaussian Splatting
Yu Liu, Baoxiong Jia, Ruijie Lu, Junfeng Ni, Song-Chun Zhu, Siyuan Huang
Abstract
Building interactable replicas of articulated objects is a key challenge in computer vision. Existing methods often fail to effectively integrate information across different object states, limiting the accuracy of part-mesh reconstruction and part dynamics modeling, particularly for complex multi-part articulated objects. We introduce ArtGS, a novel approach that leverages 3D Gaussians as a flexible and efficient representation to address these issues. Our method incorporates canonical Gaussians with coarse-to-fine initialization and updates for aligning articulated part information across different object states, and employs a skinning-inspired part dynamics modeling module to improve both part-mesh reconstruction and articulation learning. Extensive experiments on both synthetic and real-world datasets, including a new benchmark for complex multi-part objects, demonstrate that ArtGS achieves state-of-the-art performance in joint parameter estimation and part mesh reconstruction. Our approach significantly improves reconstruction quality and efficiency, especially for multi-part articulated objects. Additionally, we provide comprehensive analyses of our design choices, validating the effectiveness of each component to highlight potential areas for future improvement. Our work is made publicly available at: https://articulate-gs.github.io .
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Install the CLIlune papers fulltext de848573-de39-4923-8ac8-4c5c3a110975Cited by top-tier papers24
- REArtGS: Reconstructing and Generating Articulated Objects via 3D Gaussian Splatting with Geometric and Motion ConstraintsDi Wu, Liu Liu, Zhou Linli, Anran Huang et al.NeurIPS 2025 · 30 citations
- Particulate: Feed-Forward 3D Object ArticulationRuining Li, Yuxin Yao, Chuanxia Zheng, Christian Rupprecht et al.CVPR 2026 · 22 citations
- HoloScene: Simulation-Ready Interactive 3D Worlds from a Single VideoHongchi Xia, Chih-Hao Lin, Hao-Yu Hsu, Quentin Leboutet et al.NeurIPS 2025 · 18 citations
- ART: Articulated Reconstruction TransformerZizhang Li, Cheng Zhang, Zhengqin Li, Henry Howard-Jenkins et al.CVPR 2026 · 12 citations
- Articulation in Motion: Prior-free Part Mobility Analysis for Articulated Objects By Dynamic-Static DisentanglementHao Ai, Wenjie Chang, Jianbo Jiao, Ales Leonardis et al.ICLR 2026 · 7 citations
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- Segment AnythingAlexander Kirillov, Eric Mintun, Nikhila Ravi, Hanzi Mao et al.ICCV 2023 · 13,211 citations
- 3D Gaussian Splatting for Real-Time Radiance Field RenderingBernhard Kerbl, Georgios Kopanas, Thomas Leimkühler, George DrettakisSIGGRAPH 2023 · 5,687 citations
- 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
- Volume Rendering of Neural Implicit SurfacesLior Yariv, Jiatao Gu, Yoni Kasten, Yaron LipmanNeurIPS 2021 · 1,421 citations
- Object-Centric Learning with Slot AttentionFrancesco Locatello, Dirk Weissenborn, Thomas Unterthiner, Aravindh Mahendran et al.NeurIPS 2020 · 1,275 citations
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