Transfer learning from Hermitian to non-Hermitian quantum many-body physics

Fuente: arXiv
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Main Authors: Sayyad, Sharareh, Lado, Jose L.
Format: Preprint
Published: 2023
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author Sayyad, Sharareh
Lado, Jose L.
author_facet Sayyad, Sharareh
Lado, Jose L.
contents Identifying phase boundaries of interacting systems is one of the key steps to understanding quantum many-body models. The development of various numerical and analytical methods has allowed exploring the phase diagrams of many Hermitian interacting systems. However, numerical challenges and scarcity of analytical solutions hinder obtaining phase boundaries in non-Hermitian many-body models. Recent machine learning methods have emerged as a potential strategy to learn phase boundaries from various observables without having access to the full many-body wavefunction. Here, we show that a machine learning methodology trained solely on Hermitian correlation functions allows identifying phase boundaries of non-Hermitian interacting models. These results demonstrate that Hermitian machine learning algorithms can be redeployed to non-Hermitian models without requiring further training to reveal non-Hermitian phase diagrams. Our findings establish transfer learning as a versatile strategy to leverage Hermitian physics to machine learning non-Hermitian phenomena.
format Preprint
id arxiv_https___arxiv_org_abs_2309_06303
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Transfer learning from Hermitian to non-Hermitian quantum many-body physics
Sayyad, Sharareh
Lado, Jose L.
Quantum Physics
Strongly Correlated Electrons
Superconductivity
Identifying phase boundaries of interacting systems is one of the key steps to understanding quantum many-body models. The development of various numerical and analytical methods has allowed exploring the phase diagrams of many Hermitian interacting systems. However, numerical challenges and scarcity of analytical solutions hinder obtaining phase boundaries in non-Hermitian many-body models. Recent machine learning methods have emerged as a potential strategy to learn phase boundaries from various observables without having access to the full many-body wavefunction. Here, we show that a machine learning methodology trained solely on Hermitian correlation functions allows identifying phase boundaries of non-Hermitian interacting models. These results demonstrate that Hermitian machine learning algorithms can be redeployed to non-Hermitian models without requiring further training to reveal non-Hermitian phase diagrams. Our findings establish transfer learning as a versatile strategy to leverage Hermitian physics to machine learning non-Hermitian phenomena.
title Transfer learning from Hermitian to non-Hermitian quantum many-body physics
topic Quantum Physics
Strongly Correlated Electrons
Superconductivity
url https://arxiv.org/abs/2309.06303