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Classifying Snapshots of the Doped Hubbard Model with Machine Learning
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Quantum gas microscopes for ultracold atoms can provide high-resolution real-space snapshots of complex many-body systems. We implement machine learning to analyze and classify such snapshots of ultracold atoms. Specifically, we compare the data from an experimental realization of the two-dimensional Fermi-Hubbard model to two theoretical approaches: a doped quantum spin liquid state of resonating valence bond type, and the geometric string theory, describing a state with hidden spin order. This approach considers all available information without a potential bias towards one particular theory by the choice of an observable and can therefore select the theory which is more predictive in general. Up to intermediate doping values, our algorithm tends to classify experimental snapshots as geometric-string-like, as compared to the doped spin liquid. Our results demonstrate the potential for machine learning in processing the wealth of data obtained through quantum gas microscopy for new physical insights.
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Optimized Gutzwiller Projected States for Doped Antiferromagnets in Fermi-Hubbard Simulators
An optimized finite-temperature resonating valence bond state captures measured spin and dopant correlations of doped Fermi-Hubbard simulators on square and triangular lattices.
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