4.7 Article

Neural Subdivision

期刊

ACM TRANSACTIONS ON GRAPHICS
卷 39, 期 4, 页码 -

出版社

ASSOC COMPUTING MACHINERY
DOI: 10.1145/3386569.3392418

关键词

geometry processing; shape modeling; subdivision surfaces; machine learning

资金

  1. New Frontiers of Research Fund [NFRFE-201]
  2. Ontario Early Research Award program
  3. NSERC [RGPIN2017-05235, RGPAS-2017-507938]
  4. Canada Research Chairs Program
  5. Fields Centre for Quantitative Analysis and Modelling
  6. Adobe Systems
  7. Autodesk
  8. MESH Inc.

向作者/读者索取更多资源

This paper introduces Neural Subdivision, a novel framework for data-driven coarse-to-fine geometry modeling. During inference, our method takes a coarse triangle mesh as input and recursively subdivides it to a finer geometry by applying the fixed topological updates of Loop Subdivision, but predicting vertex positions using a neural network conditioned on the local geometry of a patch. This approach enables us to learn complex non-linear subdivision schemes, beyond simple linear averaging used in classical techniques. One of our key contributions is a novel self-supervised training setup that only requires a set of high-resolution meshes for learning network weights. For any training shape, we stochastically generate diverse low-resolution discretizations of coarse counterparts, while maintaining a bijective mapping that prescribes the exact target position of every new vertex during the subdivision process. This leads to a very efficient and accurate loss function for conditional mesh generation, and enables us to train a method that generalizes across discretizations and favors preserving the manifold structure of the output. During training we optimize for the same set of network weights across all local mesh patches, thus providing an architecture that is not constrained to a specific input mesh, fixed genus, or category. Our network encodes patch geometry in a local frame in a rotationand translation-invariant manner. Jointly, these design choices enable our method to generalize well, and we demonstrate that even when trained on a single high-resolution mesh our method generates reasonable subdivisions for novel shapes.

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