English

Bridging the Gap between Deep Learning and Frustrated Quantum Spin System for Extreme-scale Simulations on New Generation of Sunway Supercomputer

Strongly Correlated Electrons 2022-06-17 v4 Disordered Systems and Neural Networks Computational Physics

Abstract

Efficient numerical methods are promising tools for delivering unique insights into the fascinating properties of physics, such as the highly frustrated quantum many-body systems. However, the computational complexity of obtaining the wave functions for accurately describing the quantum states increases exponentially with respect to particle number. Here we present a novel convolutional neural network (CNN) for simulating the two-dimensional highly frustrated spin-1/21/2 J1J2J_1-J_2 Heisenberg model, meanwhile the simulation is performed at an extreme scale system with low cost and high scalability. By ingenious employment of transfer learning and CNN's translational invariance, we successfully investigate the quantum system with the lattice size up to 24×2424\times24, within 30 million cores of the new generation of sunway supercomputer. The final achievement demonstrates the effectiveness of CNN-based representation of quantum-state and brings the state-of-the-art record up to a brand-new level from both aspects of remarkable accuracy and unprecedented scales.

Keywords

Cite

@article{arxiv.2108.13830,
  title  = {Bridging the Gap between Deep Learning and Frustrated Quantum Spin System for Extreme-scale Simulations on New Generation of Sunway Supercomputer},
  author = {Mingfan Li and Junshi Chen and Qian Xiao and Qingcai Jiang and Xuncheng Zhao and Rongfen Lin and Fei Wang and Hong An and Xiao Liang and Lixin He},
  journal= {arXiv preprint arXiv:2108.13830},
  year   = {2022}
}

Comments

This paper reviews the technical details of calculating spin-1/2 J1-J2 model using convolutional neural network ansatz on Sunway Supercomputer