Quantum Simulation of Boson-Related Hamiltonians: Techniques, Effective
Hamiltonian Construction, and Error Analysis
- URL: http://arxiv.org/abs/2307.06580v1
- Date: Thu, 13 Jul 2023 06:46:25 GMT
- Title: Quantum Simulation of Boson-Related Hamiltonians: Techniques, Effective
Hamiltonian Construction, and Error Analysis
- Authors: Bo Peng, Yuan Su, Daniel Claudino, Karol Kowalski, Guang Hao Low,
Martin Roetteler
- Abstract summary: We discuss the incorporation of bosonic degrees of freedom into optimized fermion algorithms for near-future quantum simulations.
troublesome factors such as the magnitude of the bosonic degrees of freedom typically complicate the direct quantum simulation of these interacting models.
This strategy should specifically include a suitable fermion/boson-to-qubit mapping scheme to encode sufficiently large yet manageable bosonic modes.
- Score: 6.8063130539569
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Elementary quantum mechanics proposes that a closed physical system
consistently evolves in a reversible manner. However, control and readout
necessitate the coupling of the quantum system to the external environment,
subjecting it to relaxation and decoherence. Consequently, system-environment
interactions are indispensable for simulating physically significant theories.
A broad spectrum of physical systems in condensed-matter and high-energy
physics, vibrational spectroscopy, and circuit and cavity QED necessitates the
incorporation of bosonic degrees of freedom, such as phonons, photons, and
gluons, into optimized fermion algorithms for near-future quantum simulations.
In particular, when a quantum system is surrounded by an external environment,
its basic physics can usually be simplified to a spin or fermionic system
interacting with bosonic modes. Nevertheless, troublesome factors such as the
magnitude of the bosonic degrees of freedom typically complicate the direct
quantum simulation of these interacting models, necessitating the consideration
of a comprehensive plan. This strategy should specifically include a suitable
fermion/boson-to-qubit mapping scheme to encode sufficiently large yet
manageable bosonic modes, and a method for truncating and/or downfolding the
Hamiltonian to the defined subspace for performing an approximate but highly
accurate simulation, guided by rigorous error analysis. In this paper, we aim
to provide such an exhaustive strategy. Specifically, we emphasize two aspects:
(1) the discussion of recently developed quantum algorithms for these
interacting models and the construction of effective Hamiltonians, and (2) a
detailed analysis regarding a tightened error bound for truncating the bosonic
modes for a class of fermion-boson interacting Hamiltonians.
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