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Precise measurement of quantum observables with neural-network estimators

Torlai G.
•
Mazzola G.
•
Carleo G.
•
Mezzacapo A.
2020
  • journal article

Periodico
PHYSICAL REVIEW RESEARCH
Abstract
The measurement precision of modern quantum simulators is intrinsically constrained by the limited set of measurements that can be efficiently implemented on hardware. This fundamental limitation is particularly severe for quantum algorithms where complex quantum observables are to be precisely evaluated. To achieve precise estimates with current methods, prohibitively large amounts of sample statistics are required in experiments. Here, we propose to reduce the measurement overhead by integrating artificial neural networks with quantum simulation platforms. We show that unsupervised learning of single-qubit data allows the trained networks to accommodate measurements of complex observables, otherwise costly using traditional postprocessing techniques. The effectiveness of this hybrid measurement protocol is demonstrated for quantum chemistry Hamiltonians using both synthetic and experimental data. Neural-network estimators attain high-precision measurements with a drastic reduction in the amount of sample statistics, without requiring additional quantum resources.
DOI
10.1103/PhysRevResearch.2.022060
Archivio
https://hdl.handle.net/20.500.11767/151471
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85095344438
https://arxiv.org/abs/1910.07596
https://ricerca.unityfvg.it/handle/20.500.11767/151471
Diritti
open access
license:creative commons
license uri:http://creativecommons.org/licenses/by/4.0/
Soggetti
  • Settore PHYS-04/A - F...

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