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Main Authors: Kelman, Ariel, Borla, Umberto, Gomelski, Itay, Elyovich, Jonathan, Roose, Gertian, Emonts, Patrick, Zohar, Erez
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2404.13123
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author Kelman, Ariel
Borla, Umberto
Gomelski, Itay
Elyovich, Jonathan
Roose, Gertian
Emonts, Patrick
Zohar, Erez
author_facet Kelman, Ariel
Borla, Umberto
Gomelski, Itay
Elyovich, Jonathan
Roose, Gertian
Emonts, Patrick
Zohar, Erez
contents Gauge theories form the basis of our understanding of modern physics - ranging from the description of quarks and gluons to effective models in condensed matter physics. In the non-perturbative regime, gauge theories are conventionally treated discretely as lattice gauge theories. The resulting systems are evaluated with path-integral based Monte Carlo methods. These methods, however, can suffer from the sign problem and do not allow for a direct evaluation of real-time dynamics. In this work, we present a unified and comprehensive framework for gauged Gaussian Projected Entangled Pair States (PEPS), a variational ansatz based on tensor networks. We review the construction of Hamiltonian lattice gauge theories, explain their similarities with PEPS, and detail the construction of the state. The estimation of ground states is based on a variational Monte Carlo procedure with the PEPS as an ansatz state. This sign-problem-free ansatz can be efficiently evaluated in any dimension with arbitrary gauge groups, and can include dynamical fermionic matter, suggesting new options for the simulation of non-perturbative regimes of gauge theories, including QCD.
format Preprint
id arxiv_https___arxiv_org_abs_2404_13123
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Gauged Gaussian PEPS -- A High Dimensional Tensor Network Formulation for Lattice Gauge Theories
Kelman, Ariel
Borla, Umberto
Gomelski, Itay
Elyovich, Jonathan
Roose, Gertian
Emonts, Patrick
Zohar, Erez
High Energy Physics - Lattice
Strongly Correlated Electrons
High Energy Physics - Theory
Quantum Physics
Gauge theories form the basis of our understanding of modern physics - ranging from the description of quarks and gluons to effective models in condensed matter physics. In the non-perturbative regime, gauge theories are conventionally treated discretely as lattice gauge theories. The resulting systems are evaluated with path-integral based Monte Carlo methods. These methods, however, can suffer from the sign problem and do not allow for a direct evaluation of real-time dynamics. In this work, we present a unified and comprehensive framework for gauged Gaussian Projected Entangled Pair States (PEPS), a variational ansatz based on tensor networks. We review the construction of Hamiltonian lattice gauge theories, explain their similarities with PEPS, and detail the construction of the state. The estimation of ground states is based on a variational Monte Carlo procedure with the PEPS as an ansatz state. This sign-problem-free ansatz can be efficiently evaluated in any dimension with arbitrary gauge groups, and can include dynamical fermionic matter, suggesting new options for the simulation of non-perturbative regimes of gauge theories, including QCD.
title Gauged Gaussian PEPS -- A High Dimensional Tensor Network Formulation for Lattice Gauge Theories
topic High Energy Physics - Lattice
Strongly Correlated Electrons
High Energy Physics - Theory
Quantum Physics
url https://arxiv.org/abs/2404.13123