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Restricted Boltzmann machine learning for solving strongly correlated quantum systems

Yusuke NomuraAndrew S. DarmawanYouhei YamajiMasatoshi Imada

Abstract

We develop a machine learning method to construct accurate ground-state wave functions of strongly interacting and entangled quantum spin as well as fermionic models on lattices. A restricted Boltzmann machine algorithm in the form of an artificial neural network is combined with a conventional variational Monte Carlo method with pair product (geminal) wave functions and quantum number projections. The combination allows an application of the machine learning scheme to interacting fermionic systems. The combined method substantially improves the accuracy beyond that ever achieved by each method separately, in the Heisenberg as well as Hubbard models on square lattices, thus proving its power as a highly accurate quantum many-body solver.

Quantum many-body systemsPhysics of Superconductivity and MagnetismQuantum and electron transport phenomenaBoltzmann machineRestricted Boltzmann machineHubbard modelVariational Monte CarloArtificial neural networkWave functionQuantumQuantum Monte CarloGeminalStatistical physics

Funding

  • Ministry of Education, Culture, Sports, Science and Technology
  • University of Tokyo
  • Japan Society for the Promotion of Science
  • Japan Science and Technology Agency
  • Advanced Science Institute
  • Precursory Research for Embryonic Science and Technology
Citations
324
FWCI
19.88
field-weighted impact
References
75
Percentile
100%
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Citations per year
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