Point2Skeleton: Learning Skeletal Representations from Point Clouds
Cheng Lin, Changjian Li, Yuan Liu, Nenglun Chen, Yi-King Choi, Wenping Wang
Abstract
We introduce Point2Skeleton, an unsupervised method to learn skeletal representations from point clouds. Existing skeletonization methods are limited to tubular shapes and the stringent requirement of watertight input, while our method aims to produce more generalized skeletal representations for complex structures and handle point clouds. Our key idea is to use the insights of the medial axis transform (MAT) to capture the intrinsic geometric and topological natures of the original input points. We first predict a set of skeletal points by learning a geometric transformation, and then analyze the connectivity of the skeletal points to form skeletal mesh structures. Extensive evaluations and comparisons show our method has superior performance and robustness. The learned skeletal representation will benefit several unsupervised tasks for point clouds, such as surface reconstruction and segmentation.
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Cited by top-tier papers18
- Walk in the Cloud: Learning Curves for Point Clouds Shape AnalysisTiange Xiang, Chaoyi Zhang, Yang Song, Jianhui Yu et al.ICCV 2021 · 369 citations
- LAKe-Net: Topology-Aware Point Cloud Completion by Localizing Aligned KeypointsJunshu Tang, Zhijun Gong, Ran Yi, Yuan Xie et al.CVPR 2022 · 74 citations
- Puppeteer: Rig and Animate Your 3D ModelsChaoyue Song, Xiu Li, Fan Yang, Zhongcong Xu et al.NeurIPS 2025 · 48 citations
- SPEAL: Skeletal Prior Embedded Attention Learning for Cross-Source Point Cloud RegistrationKezheng Xiong, Maoji Zheng, Qingshan Xu, Chenglu Wen et al.AAAI 2024 · 24 citations
- Part123: Part-aware 3D Reconstruction from a Single-view ImageAnran Liu, Cheng Lin, Yuan Liu, Xiaoxiao Long et al.SIGGRAPH 2024 · 23 citations
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