SymmCompletion: High-Fidelity and High-Consistency Point Cloud Completion with Symmetry Guidance
Hongyu Yan, Zijun Li, Kunming Luo, Li Lu, Ping Tan
摘要
Point cloud completion aims to recover a complete point shape from a partial point cloud. Although existing methods can form satisfactory point clouds in global completeness, they often lose the original geometry details and face the problem of geometric inconsistency between existing point clouds and reconstructed missing parts. To tackle this problem, we introduce SymmCompletion, a highly effective completion method based on symmetry guidance. Our method comprises two primary components: a Local Symmetry Transformation Network (LSTNet) and a Symmetry-Guidance Transformer (SGFormer). First, LSTNet efficiently estimates point-wise local symmetry transformation to transform key geometries of partial inputs into missing regions, thereby generating geometry-align partial-missing pairs and initial point clouds. Second, SGFormer leverages the geometric features of partial-missing pairs as the explicit symmetric guidance that can constrain the refinement process for initial point clouds. As a result, SGFormer can exploit provided priors to form high-fidelity and geometry-consistency final point clouds. Qualitative and quantitative evaluations on several benchmark datasets demonstrate that our method outperforms state-of-the-art completion networks.
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引用它的顶会 Paper9
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- Simba: Towards High-Fidelity and Geometrically-Consistent Point Cloud Completion via Transformation DiffusionLirui Zhang, Zhengkai Zhao, Zhi Zuo, Pan Gao 等AAAI 2026 · 被引用 1 次
- Rethinking Multimodal Point Cloud Completion: A Completion-by-Correction PerspectiveWang Luo, Di Wu, Hengyuan Na, Yinlin Zhu 等AAAI 2026
- TouchDream: 3D Object Completion through Imagined TouchYuanbo Wang, Xinning Wang, Zhaoxuan Zhang, Changlong Wang 等CVPR 2026
- Unified Primitive Proxies for Structured Shape CompletionZhaiyu Chen, Yuqing Wang, Xiao Xiang ZhuCVPR 2026
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- SnowflakeNet: Point Cloud Completion by Snowflake Point Deconvolution with Skip-TransformerPeng Xiang, Xin Wen, Yu-Shen Liu, Yan-Pei Cao 等ICCV 2021 · 被引用 318 次
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