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Stabilizing quantum simulations of lattice gauge theories by dissipation
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Simulations of lattice gauge theories on noisy quantum hardware inherently suffer from violations of the gauge symmetry due to coherent and incoherent errors of the underlying physical system that implements the simulation. These gauge violations cause the simulations to become unphysical requiring the result of the simulation to be discarded. We investigate an active correction scheme that relies on detecting gauge violations locally and subsequently correcting them by dissipatively driving the system back into the physical gauge sector. We show that the correction scheme not only ensures the protection of the gauge symmetry, but it also leads to a longer validity of the simulation results even within the gauge-invariant sector. Finally, we discuss further applications of the scheme such as preparation of the many-body ground state of the simulated system.
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Variational quantum thermalizers based on weakly-symmetric nonunitary multi-qubit operations
A variational quantum thermalizer that alternates unitary gates with weakly-symmetric multi-qubit dissipative operations prepares Gibbs states of spin models with high numerical fidelity at all temperatures.
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