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Reliability of lattice gauge theories

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arxiv 2001.00024 v1 pith:TWEMYJJ7 submitted 2019-12-31 cond-mat.quant-gas cond-mat.stat-mechhep-lathep-phquant-ph

classification cond-mat.quant-gascond-mat.stat-mechhep-lathep-phquant-ph
keywords gaugequantumsimulatorstimeslatticeonlytheoriesthere
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Currently, there are intense experimental efforts to realize lattice gauge theories in quantum simulators. Except for specific models, however, practical quantum simulators can never be fine-tuned to perfect local gauge invariance. There is thus a strong need for a rigorous understanding of gauge-invariance violation and how to reliably protect against it. As we show through analytic and numerical evidence, in the presence of a gauge invariance-breaking term the gauge violation accumulates only perturbatively at short times before proliferating only at very long times. This proliferation can be suppressed up to infinite times by energetically penalizing processes that drive the dynamics away from the initial gauge-invariant sector. Our results provide a theoretical basis that highlights a surprising robustness of gauge-theory quantum simulators.

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  1. Measurement-based simulation of lattice gauge theory dynamics with adaptive quantum circuits on a trapped-ion processor

    quant-ph 2026-08 conditional novelty 7.0 of 10

    A trapped-ion experiment demonstrates adaptive measurement-based simulation of real-time Z2 lattice gauge theory dynamics, with one-form-symmetry syndromes used for postselection.

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