Point Cloud Synthesis Using Inner Product Transforms
Ernst Röell, Bastian Rieck
2025年份
3被引次数
2顶会引用
摘要
Point cloud synthesis, i.e. the generation of novel point clouds from an input distribution, remains a challenging task, for which numerous complex machine learning models have been devised. We develop a novel method that encodes geometrical-topological characteristics of point clouds using inner products, leading to a highly-efficient point cloud representation with provable expressivity properties. Integrated into deep learning models, our encoding exhibits high quality in typical tasks like reconstruction, generation, and interpolation, with inference times orders of magnitude faster than existing methods.
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引用它的顶会 Paper2
- LEAP: Local ECT-Based Learnable Positional Encodings for GraphsJuan Amboage, Ernst Röell, Patrick Schnider, Bastian RieckICLR 2026 · 被引用 3 次
- Diss-l-ECT: Dissecting Graph Data with Local Euler Characteristic TransformsJulius von Rohrscheidt, Bastian RieckICML 2025
它引用的顶会 Paper11
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- 3D Shape Generation and Completion through Point-Voxel DiffusionLinqi Zhou, Yilun Du, Jiajun WuICCV 2021 · 被引用 681 次
- Evaluation Metrics for Graph Generative Models: Problems, Pitfalls, and Practical SolutionsLeslie O'Bray, Max Horn, Bastian Rieck, Karsten M. BorgwardtICLR 2022 · 被引用 51 次
- XCube: Large-Scale 3D Generative Modeling using Sparse Voxel HierarchiesXuanchi Ren, Jiahui Huang, Xiaohui Zeng, Ken Museth 等CVPR 2024 · 被引用 32 次
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