Article (Scientific journals)
Estimation of the geometric measure of entanglement with Wehrl moments through artificial neural networks
Denis, Jérôme; Damanet, François; Martin, John
2023In SciPost Physics, 15, p. 208
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Keywords :
Quantum Physics; Physics - Computational Physics
Abstract :
[en] In recent years, artificial neural networks (ANNs) have become an increasingly popular tool for studying problems in quantum theory, and in particular entanglement theory. In this work, we analyse to what extent ANNs can accurately predict the geometric measure of entanglement of symmetric multiqubit states using only a limited number of Wehrl moments (moments of the Husimi function of the state) as input, which represents partial information about the state. We consider both pure and mixed quantum states. We compare the results we obtain by training ANNs with the informed use of convergence acceleration methods. We find that even some of the most powerful convergence acceleration algorithms do not compete with ANNs when given the same input data, provided that enough data is available to train these ANNs. We also provide an experimental protocol for measuring Wehrl moments, which is state-independent. More generally, this work opens up perspectives for the estimation of entanglement measures and other SU(2)-invariant quantities, such as the Wehrl entropy, in a way that is more accessible in experiments than by means of full state tomography.
Disciplines :
Physics
Author, co-author :
Denis, Jérôme  ;  Université de Liège - ULiège > Département de physique > Optique quantique
Damanet, François  ;  Université de Liège - ULiège > Département de physique
Martin, John  ;  Université de Liège - ULiège > Complex and Entangled Systems from Atoms to Materials (CESAM)
Language :
English
Title :
Estimation of the geometric measure of entanglement with Wehrl moments through artificial neural networks
Publication date :
27 November 2023
Journal title :
SciPost Physics
eISSN :
2542-4653
Publisher :
SciPost Foundation, Amsterdam, Netherlands
Volume :
15
Pages :
208
Peer reviewed :
Peer Reviewed verified by ORBi
Tags :
CÉCI : Consortium des Équipements de Calcul Intensif
Commentary :
28 pages, 14 figures
Available on ORBi :
since 31 May 2022

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