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High Energy Physics - Lattice

arXiv:2212.04619 (hep-lat)
[Submitted on 9 Dec 2022]

Title:Overcoming exponential volume scaling in quantum simulations of lattice gauge theories

Authors:Christopher F. Kane, Dorota M. Grabowska, Benjamin Nachman, Christian W. Bauer
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Abstract:Real-time evolution of quantum field theories using classical computers requires resources that scale exponentially with the number of lattice sites. Because of a fundamentally different computational strategy, quantum computers can in principle be used to perform detailed studies of these dynamics from first principles. Before performing such calculations, it is important to ensure that the quantum algorithms used do not have a cost that scales exponentially with the volume. In these proceedings, we present an interesting test case: a formulation of a compact U(1) gauge theory in 2+1 dimensions free of gauge redundancies. A naive implementation onto a quantum circuit has a gate count that scales exponentially with the volume. We discuss how to break this exponential scaling by performing an operator redefinition that reduces the non-locality of the Hamiltonian. While we study only one theory as a test case, it is possible that the exponential gate scaling will persist for formulations of other gauge theories, including non-Abelian theories in higher dimensions.
Comments: 11 pages, 2 figures, Proceedings of the 39th Annual International Symposium on Lattice Field Theory (Lattice 2022), August 8-13 2022, Bonn, Germany
Subjects: High Energy Physics - Lattice (hep-lat); Quantum Physics (quant-ph)
Cite as: arXiv:2212.04619 [hep-lat]
  (or arXiv:2212.04619v1 [hep-lat] for this version)
  https://doi.org/10.48550/arXiv.2212.04619
arXiv-issued DOI via DataCite

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From: Christopher Kane [view email]
[v1] Fri, 9 Dec 2022 01:18:46 UTC (286 KB)
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