Quantum simulation of quantum field theories as quantum chemistry
Abstract Conformal truncation is a powerful numerical method for solving generic strongly-coupled quantum field theories based on purely field-theoretic technics without introducing lattice regularization. We discuss possible speedups for performing those computations using quantum devices, with the...
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Online Access: | https://doi.org/10.1007/JHEP12(2020)011 |
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doaj-9d394e7bcec84ea8be80b0e8a1605fd82020-12-13T12:05:34ZengSpringerOpenJournal of High Energy Physics1029-84792020-12-0120201214810.1007/JHEP12(2020)011Quantum simulation of quantum field theories as quantum chemistryJunyu Liu0Yuan Xin1Walter Burke Institute for Theoretical Physics, California Institute of TechnologyDepartment of Physics, Boston UniversityAbstract Conformal truncation is a powerful numerical method for solving generic strongly-coupled quantum field theories based on purely field-theoretic technics without introducing lattice regularization. We discuss possible speedups for performing those computations using quantum devices, with the help of near-term and future quantum algorithms. We show that this construction is very similar to quantum simulation problems appearing in quantum chemistry (which are widely investigated in quantum information science), and the renormalization group theory provides a field theory interpretation of conformal truncation simulation. Taking two-dimensional Quantum Chromodynamics (QCD) as an example, we give various explicit calculations of variational and digital quantum simulations in the level of theories, classical trials, or quantum simulators from IBM, including adiabatic state preparation, variational quantum eigensolver, imaginary time evolution, and quantum Lanczos algorithm. Our work shows that quantum computation could not only help us understand fundamental physics in the lattice approximation, but also simulate quantum field theory methods directly, which are widely used in particle and nuclear physics, sharpening the statement of the quantum Church-Turing Thesis.https://doi.org/10.1007/JHEP12(2020)011Conformal Field TheoryField Theories in Lower DimensionsLattice Quantum Field Theory |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Junyu Liu Yuan Xin |
spellingShingle |
Junyu Liu Yuan Xin Quantum simulation of quantum field theories as quantum chemistry Journal of High Energy Physics Conformal Field Theory Field Theories in Lower Dimensions Lattice Quantum Field Theory |
author_facet |
Junyu Liu Yuan Xin |
author_sort |
Junyu Liu |
title |
Quantum simulation of quantum field theories as quantum chemistry |
title_short |
Quantum simulation of quantum field theories as quantum chemistry |
title_full |
Quantum simulation of quantum field theories as quantum chemistry |
title_fullStr |
Quantum simulation of quantum field theories as quantum chemistry |
title_full_unstemmed |
Quantum simulation of quantum field theories as quantum chemistry |
title_sort |
quantum simulation of quantum field theories as quantum chemistry |
publisher |
SpringerOpen |
series |
Journal of High Energy Physics |
issn |
1029-8479 |
publishDate |
2020-12-01 |
description |
Abstract Conformal truncation is a powerful numerical method for solving generic strongly-coupled quantum field theories based on purely field-theoretic technics without introducing lattice regularization. We discuss possible speedups for performing those computations using quantum devices, with the help of near-term and future quantum algorithms. We show that this construction is very similar to quantum simulation problems appearing in quantum chemistry (which are widely investigated in quantum information science), and the renormalization group theory provides a field theory interpretation of conformal truncation simulation. Taking two-dimensional Quantum Chromodynamics (QCD) as an example, we give various explicit calculations of variational and digital quantum simulations in the level of theories, classical trials, or quantum simulators from IBM, including adiabatic state preparation, variational quantum eigensolver, imaginary time evolution, and quantum Lanczos algorithm. Our work shows that quantum computation could not only help us understand fundamental physics in the lattice approximation, but also simulate quantum field theory methods directly, which are widely used in particle and nuclear physics, sharpening the statement of the quantum Church-Turing Thesis. |
topic |
Conformal Field Theory Field Theories in Lower Dimensions Lattice Quantum Field Theory |
url |
https://doi.org/10.1007/JHEP12(2020)011 |
work_keys_str_mv |
AT junyuliu quantumsimulationofquantumfieldtheoriesasquantumchemistry AT yuanxin quantumsimulationofquantumfieldtheoriesasquantumchemistry |
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1724385340187213824 |