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Preserving gauge invariance in neural networks
by
Müller, David I.
, Favoni, Matteo
, Schuh, Daniel
, Ipp, Andreas
in
Artificial neural networks
/ Gauge invariance
/ Gauge theory
/ Invariance
2022
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Do you wish to request the book?
Preserving gauge invariance in neural networks
by
Müller, David I.
, Favoni, Matteo
, Schuh, Daniel
, Ipp, Andreas
in
Artificial neural networks
/ Gauge invariance
/ Gauge theory
/ Invariance
2022
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Journal Article
Preserving gauge invariance in neural networks
2022
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Overview
In these proceedings we present lattice gauge equivariant convolutional neural networks (L-CNNs) which are able to process data from lattice gauge theory simulations while exactly preserving gauge symmetry. We review aspects of the architecture and show how L-CNNs can represent a large class of gauge invariant and equivariant functions on the lattice. We compare the performance of L-CNNs and non-equivariant networks using a non-linear regression problem and demonstrate how gauge invariance is broken for non-equivariant models.
Publisher
EDP Sciences
Subject
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