arXiv · 1902.04057
Deep autoregressive models for the efficient variational simulation of many-body quantum systems
Abstract
Artificial Neural Networks were recently shown to be an efficient representation of highly-entangled many-body quantum states. In practical applications, neural-network states inherit numerical schemes used in Variational Monte Carlo, most notably the use of Markov-Chain Monte-Carlo (MCMC) sampling to estimate quantum expectations. The local stochastic sampling in MCMC caps the potential advantages of neural networks in two ways: (i) Its intrinsic computational cost sets stringent practical limits on the width and depth of the networks, and therefore limits their expressive capacity; (ii) Its difficulty in generating precise and uncorrelated samples can result in estimations of observables that are very far from their true value. Inspired by the state-of-the-art generative models used in machine learning, we propose a specialized Neural Network architecture that supports efficient and exact sampling, completely circumventing the need for Markov Chain sampling. We demonstrate our approach for two-dimensional interacting spin models, showcasing the ability to obtain accurate results on larger system sizes than those currently accessible to neural-network quantum states.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Or Sharir, Yoav Levine, Noam Wies, Giuseppe Carleo, Amnon Shashua. 2020-01-19. Deep autoregressive models for the efficient variational simulation of many-body quantum systems. https://doi.org/10.1103/physrevlett.124.020503
Cite the original work for its findings. Save a collection to share your selection of sources.