Measuring Renyi Entropy in Neural Network Quantum States

Fuente: arXiv
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Main Authors: Shi, Han-Qing, Zhang, Hai-Qing
Format: Preprint
Published: 2023
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author Shi, Han-Qing
Zhang, Hai-Qing
author_facet Shi, Han-Qing
Zhang, Hai-Qing
contents We compute the Renyi entropy in a one-dimensional transverse-field quantum Ising model by employing a swapping operator acting on the states which are prepared from the neural network methods. In the static ground state, Renyi entropy can uncover the critical point of the quantum phase transition from paramagnetic to ferromagnetic. At the critical point, the relation between the Renyi entropy and the subsystem size satisfies the predictions from conformal field theory. In the dynamical case, we find coherent oscillations of the Renyi entropy after the end of the linear quench. These oscillations have universal frequencies which may come from the superpositions of excited states. The asymptotic form of the Renyi entropy implies a new length scale away from the critical point. This length scale is also verified by the overlap of the reduced Renyi entropy against the dimensionless subsystem size.
format Preprint
id arxiv_https___arxiv_org_abs_2308_05513
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Measuring Renyi Entropy in Neural Network Quantum States
Shi, Han-Qing
Zhang, Hai-Qing
Disordered Systems and Neural Networks
High Energy Physics - Theory
Quantum Physics
We compute the Renyi entropy in a one-dimensional transverse-field quantum Ising model by employing a swapping operator acting on the states which are prepared from the neural network methods. In the static ground state, Renyi entropy can uncover the critical point of the quantum phase transition from paramagnetic to ferromagnetic. At the critical point, the relation between the Renyi entropy and the subsystem size satisfies the predictions from conformal field theory. In the dynamical case, we find coherent oscillations of the Renyi entropy after the end of the linear quench. These oscillations have universal frequencies which may come from the superpositions of excited states. The asymptotic form of the Renyi entropy implies a new length scale away from the critical point. This length scale is also verified by the overlap of the reduced Renyi entropy against the dimensionless subsystem size.
title Measuring Renyi Entropy in Neural Network Quantum States
topic Disordered Systems and Neural Networks
High Energy Physics - Theory
Quantum Physics
url https://arxiv.org/abs/2308.05513