3D Shape Completion with Multi-View Consistent Inference
Tao Hu, Zhizhong Han, Matthias Zwicker
摘要
3D shape completion is important to enable machines to perceive the complete geometry of objects from partial observations. To address this problem, view-based methods have been presented. These methods represent shapes as multiple depth images, which can be back-projected to yield corresponding 3D point clouds, and they perform shape completion by learning to complete each depth image using neural networks. While view-based methods lead to state-of-the-art results, they currently do not enforce geometric consistency among the completed views during the inference stage. To resolve this issue, we propose a multi-view consistent inference technique for 3D shape completion, which we express as an energy minimization problem including a data term and a regularization term. We formulate the regularization term as a consistency loss that encourages geometric consistency among multiple views, while the data term guarantees that the optimized views do not drift away too much from a learned shape descriptor. Experimental results demonstrate that our method completes shapes more accurately than previous techniques.
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引用它的顶会 Paper16
- 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
- PointAttN: You Only Need Attention for Point Cloud CompletionJun Wang, Ying Cui, Dongyan Guo, Junxia Li 等AAAI 2024 · 被引用 113 次
- Learning Consistency-Aware Unsigned Distance Functions Progressively from Raw Point CloudsJunsheng Zhou, Baorui Ma, Yu-Shen Liu, Yi Fang 等NeurIPS 2022 · 被引用 77 次
- Surface Reconstruction from Point Clouds by Learning Predictive Context PriorsBaorui Ma, Yu-Shen Liu, Matthias Zwicker, Zhizhong HanCVPR 2022 · 被引用 67 次
- Reconstructing Surfaces for Sparse Point Clouds with On-Surface PriorsBaorui Ma, Yu-Shen Liu, Zhizhong HanCVPR 2022 · 被引用 66 次
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