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Current quantum simulation experiments are starting to explore non-equilibrium many-body dynamics in previously inaccessible regimes in terms of system sizes and time scales.
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Michael Grady · 1982
Earlier work this paper cites.
Quantum statistical mechanics in a closed system
J. M. Deutsch · 1991
Earlier work this paper cites.
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Earlier work this paper cites.
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Earlier work this paper cites.
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Earlier work this paper cites.
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Earlier work this paper cites.
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Earlier work this paper cites.
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Earlier work this paper cites.
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Earlier work this paper cites.
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Earlier work this paper cites.
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Earlier work this paper cites.
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Probing many-body localization with neural networks
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Learning phase transitions by confusion
Evert P. L. van Nieuwenburg, Ye-Hua Liu, and Sebastian D. Huber · 2017
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