English

Symmetry-via-Duality: Invariant Neural Network Densities from Parameter-Space Correlators

Machine Learning 2021-06-03 v1 High Energy Physics - Theory Machine Learning

Abstract

Parameter-space and function-space provide two different duality frames in which to study neural networks. We demonstrate that symmetries of network densities may be determined via dual computations of network correlation functions, even when the density is unknown and the network is not equivariant. Symmetry-via-duality relies on invariance properties of the correlation functions, which stem from the choice of network parameter distributions. Input and output symmetries of neural network densities are determined, which recover known Gaussian process results in the infinite width limit. The mechanism may also be utilized to determine symmetries during training, when parameters are correlated, as well as symmetries of the Neural Tangent Kernel. We demonstrate that the amount of symmetry in the initialization density affects the accuracy of networks trained on Fashion-MNIST, and that symmetry breaking helps only when it is in the direction of ground truth.

Keywords

Cite

@article{arxiv.2106.00694,
  title  = {Symmetry-via-Duality: Invariant Neural Network Densities from Parameter-Space Correlators},
  author = {Anindita Maiti and Keegan Stoner and James Halverson},
  journal= {arXiv preprint arXiv:2106.00694},
  year   = {2021}
}

Comments

20 pages, 3 figures

R2 v1 2026-06-24T02:43:20.477Z