English

Helping restricted Boltzmann machines with quantum-state representation by restoring symmetry

Strongly Correlated Electrons 2021-04-28 v3 Disordered Systems and Neural Networks Computational Physics Quantum Physics

Abstract

The variational wave functions based on neural networks have recently started to be recognized as a powerful ansatz to represent quantum many-body states accurately. In order to show the usefulness of the method among all available numerical methods, it is imperative to investigate the performance in challenging many-body problems for which the exact solutions are not available. Here, we construct a variational wave function with one of the simplest neural networks, the restricted Boltzmann machine (RBM), and apply it to a fundamental but unsolved quantum spin Hamiltonian, the two-dimensional J1J_1-J2J_2 Heisenberg model on the square lattice. We supplement the RBM wave function with quantum-number projections, which restores the symmetry of the wave function and makes it possible to calculate excited states. Then, we perform a systematic investigation of the performance of the RBM. We show that, with the help of the symmetry, the RBM wave function achieves state-of-the-art accuracy both in ground-state and excited-state calculations. The study shows a practical guideline on how we achieve accuracy in a controlled manner.

Keywords

Cite

@article{arxiv.2009.14777,
  title  = {Helping restricted Boltzmann machines with quantum-state representation by restoring symmetry},
  author = {Yusuke Nomura},
  journal= {arXiv preprint arXiv:2009.14777},
  year   = {2021}
}

Comments

10 pages, 7 figures, 3 tables, accepted for a special issue "Emerging Leaders 2020" in Journal of Physics: Condensed Matter