JOURNAL ARTICLE

Non-uniform Point Cloud Upsampling via Local Manifold Distribution

Y. FangXingce Wang

Year: 2025 Journal:   Proceedings of the ACM on Computer Graphics and Interactive Techniques Vol: 8 (1)Pages: 1-15   Publisher: Association for Computing Machinery

Abstract

Existing learning-based point cloud upsampling methods often overlook the intrinsic data distribution characteristics of point clouds, leading to suboptimal results when handling sparse and non-uniform point clouds. We propose a novel approach to point cloud upsampling by imposing constraints from the perspective of manifold distributions. Leveraging the strong fitting capability of Gaussian functions, our method employs a network to iteratively optimize Gaussian components and their weights, accurately representing local manifolds. By utilizing the probabilistic distribution properties of Gaussian functions, we construct a unified statistical manifold to impose distribution constraints on the point cloud. Experimental results on multiple datasets demonstrate that our method generates higher-quality and more uniformly distributed dense point clouds when processing sparse and non-uniform inputs, outperforming state-of-the-art point cloud upsampling techniques.

Keywords:
Upsampling Point cloud Manifold (fluid mechanics) Distribution (mathematics) Cloud computing Point (geometry) Mathematics Computer science Mathematical analysis Geometry Artificial intelligence Engineering Image (mathematics)

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Topics

3D Shape Modeling and Analysis
Physical Sciences →  Engineering →  Computational Mechanics
Remote Sensing and LiDAR Applications
Physical Sciences →  Environmental Science →  Environmental Engineering
Optical measurement and interference techniques
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition

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