HPNet: Deep Primitive Segmentation Using Hybrid Representations
Siming Yan, Zhenpei Yang, Chongyang Ma, Haibin Huang, Etienne Vouga, Qixing Huang
摘要
This paper introduces HPNet, a novel deep-learning approach for segmenting a 3D shape represented as a point cloud into primitive patches. The key to deep primitive segmentation is learning a feature representation that can separate points of different primitives. Unlike utilizing a single feature representation, HPNet leverages hybrid representations that combine one learned semantic descriptor, two spectral descriptors derived from predicted geometric parameters, as well as an adjacency matrix that encodes sharp edges. Moreover, instead of merely concatenating the descriptors, HPNet optimally combines hybrid representations by learning combination weights. This weighting module builds on the entropy of input features. The output primitive segmentation is obtained from a meanshift clustering module. Experimental results on benchmark datasets ANSI and ABCParts show that HPNet leads to significant performance gains from baseline approaches.
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引用它的顶会 Paper18
- Surface and Edge Detection for Primitive Fitting of Point CloudsYuanqi Li, Shun Liu, Xinran Yang, Jianwei Guo 等SIGGRAPH 2023 · 被引用 53 次
- Finding Good Configurations of Planar Primitives in Unorganized Point CloudsMulin Yu, Florent LafargeCVPR 2022 · 被引用 30 次
- Split-and-Fit: Learning B-Reps via Structure-Aware Voronoi PartitioningYilin Liu, Jiale Chen, Shanshan Pan, Daniel Cohen-Or 等SIGGRAPH 2024 · 被引用 23 次
- 3D Feature Prediction for Masked-AutoEncoder-Based Point Cloud PretrainingSiming Yan, Yuqi Yang, Yu-Xiao Guo, Hao Pan 等ICLR 2024 · 被引用 21 次
- AutoGPart: Intermediate Supervision Search for Generalizable 3D Part SegmentationXueyi Liu, Xiaomeng Xu, Anyi Rao, Chuang Gan 等CVPR 2022 · 被引用 17 次
它引用的顶会 Paper2
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