English

Geometric Deep Learning and Equivariant Neural Networks

Machine Learning 2021-05-31 v1 Computer Vision and Pattern Recognition High Energy Physics - Theory

Abstract

We survey the mathematical foundations of geometric deep learning, focusing on group equivariant and gauge equivariant neural networks. We develop gauge equivariant convolutional neural networks on arbitrary manifolds M\mathcal{M} using principal bundles with structure group KK and equivariant maps between sections of associated vector bundles. We also discuss group equivariant neural networks for homogeneous spaces M=G/K\mathcal{M}=G/K, which are instead equivariant with respect to the global symmetry GG on M\mathcal{M}. Group equivariant layers can be interpreted as intertwiners between induced representations of GG, and we show their relation to gauge equivariant convolutional layers. We analyze several applications of this formalism, including semantic segmentation and object detection networks. We also discuss the case of spherical networks in great detail, corresponding to the case M=S2=SO(3)/SO(2)\mathcal{M}=S^2=\mathrm{SO}(3)/\mathrm{SO}(2). Here we emphasize the use of Fourier analysis involving Wigner matrices, spherical harmonics and Clebsch-Gordan coefficients for G=SO(3)G=\mathrm{SO}(3), illustrating the power of representation theory for deep learning.

Keywords

Cite

@article{arxiv.2105.13926,
  title  = {Geometric Deep Learning and Equivariant Neural Networks},
  author = {Jan E. Gerken and Jimmy Aronsson and Oscar Carlsson and Hampus Linander and Fredrik Ohlsson and Christoffer Petersson and Daniel Persson},
  journal= {arXiv preprint arXiv:2105.13926},
  year   = {2021}
}

Comments

57 pages

R2 v1 2026-06-24T02:34:41.345Z