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Simulating mathbb{Z}₂ Lattice Gauge Theory with the Variational Quantum Thermalizer

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arxiv 2306.06057 v1 pith:MJYB4PNZ submitted 2023-06-09 hep-lat quant-ph

Simulating mathbb{Z}₂ Lattice Gauge Theory with the Variational Quantum Thermalizer

classification hep-lat quant-ph
keywords quantumgaugelatticevariationalwellabelianactionaddress
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The properties of strongly-coupled lattice gauge theories at finite density as well as in real time have largely eluded first-principles studies on the lattice. This is due to the failure of importance sampling for systems with a complex action. An alternative to evade the sign problem is quantum simulation. Although still in its infancy, a lot of progress has been made in devising algorithms to address these problems. In particular, recent efforts have addressed the question of how to produce thermal Gibbs states on a quantum computer. In this study, we apply a variational quantum algorithm to a low-dimensional model which has a local abelian gauge symmetry. We demonstrate how this approach can be applied to obtain information regarding the phase diagram as well as unequal-time correlation functions at non-zero temperature.

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