Homodyne-based quantum random number generator at 2.9 Gbps secure against quantum side-information

Security analyses for trusted quantum random number generators usually consider only classical side-information. Here, the authors fill this gap by fully characterising the experimental apparatus of a homodyne-based QRNG, assuming that the vacuum fluctuations and noise are stationary and Gaussian.

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Autores principales: Tobias Gehring, Cosmo Lupo, Arne Kordts, Dino Solar Nikolic, Nitin Jain, Tobias Rydberg, Thomas B. Pedersen, Stefano Pirandola, Ulrik L. Andersen
Formato: article
Lenguaje:EN
Publicado: Nature Portfolio 2021
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Acceso en línea:https://doaj.org/article/ca01ff6c14f64cc4a33d4de3f43894e5
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spelling oai:doaj.org-article:ca01ff6c14f64cc4a33d4de3f43894e52021-12-02T13:27:30ZHomodyne-based quantum random number generator at 2.9 Gbps secure against quantum side-information10.1038/s41467-020-20813-w2041-1723https://doaj.org/article/ca01ff6c14f64cc4a33d4de3f43894e52021-01-01T00:00:00Zhttps://doi.org/10.1038/s41467-020-20813-whttps://doaj.org/toc/2041-1723Security analyses for trusted quantum random number generators usually consider only classical side-information. Here, the authors fill this gap by fully characterising the experimental apparatus of a homodyne-based QRNG, assuming that the vacuum fluctuations and noise are stationary and Gaussian.Tobias GehringCosmo LupoArne KordtsDino Solar NikolicNitin JainTobias RydbergThomas B. PedersenStefano PirandolaUlrik L. AndersenNature PortfolioarticleScienceQENNature Communications, Vol 12, Iss 1, Pp 1-11 (2021)
institution DOAJ
collection DOAJ
language EN
topic Science
Q
spellingShingle Science
Q
Tobias Gehring
Cosmo Lupo
Arne Kordts
Dino Solar Nikolic
Nitin Jain
Tobias Rydberg
Thomas B. Pedersen
Stefano Pirandola
Ulrik L. Andersen
Homodyne-based quantum random number generator at 2.9 Gbps secure against quantum side-information
description Security analyses for trusted quantum random number generators usually consider only classical side-information. Here, the authors fill this gap by fully characterising the experimental apparatus of a homodyne-based QRNG, assuming that the vacuum fluctuations and noise are stationary and Gaussian.
format article
author Tobias Gehring
Cosmo Lupo
Arne Kordts
Dino Solar Nikolic
Nitin Jain
Tobias Rydberg
Thomas B. Pedersen
Stefano Pirandola
Ulrik L. Andersen
author_facet Tobias Gehring
Cosmo Lupo
Arne Kordts
Dino Solar Nikolic
Nitin Jain
Tobias Rydberg
Thomas B. Pedersen
Stefano Pirandola
Ulrik L. Andersen
author_sort Tobias Gehring
title Homodyne-based quantum random number generator at 2.9 Gbps secure against quantum side-information
title_short Homodyne-based quantum random number generator at 2.9 Gbps secure against quantum side-information
title_full Homodyne-based quantum random number generator at 2.9 Gbps secure against quantum side-information
title_fullStr Homodyne-based quantum random number generator at 2.9 Gbps secure against quantum side-information
title_full_unstemmed Homodyne-based quantum random number generator at 2.9 Gbps secure against quantum side-information
title_sort homodyne-based quantum random number generator at 2.9 gbps secure against quantum side-information
publisher Nature Portfolio
publishDate 2021
url https://doaj.org/article/ca01ff6c14f64cc4a33d4de3f43894e5
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