Security of discrete-modulated continuous-variable quantum key distribution

Fuente: arXiv
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Main Authors: Bäuml, Stefan, Pascual-García, Carlos, Wright, Victoria, Fawzi, Omar, Acín, Antonio
Format: Preprint
Published: 2023
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author Bäuml, Stefan
Pascual-García, Carlos
Wright, Victoria
Fawzi, Omar
Acín, Antonio
author_facet Bäuml, Stefan
Pascual-García, Carlos
Wright, Victoria
Fawzi, Omar
Acín, Antonio
contents Continuous variable quantum key distribution with discrete modulation has the potential to provide information-theoretic security using widely available optical elements and existing telecom infrastructure. While their implementation is significantly simpler than that for protocols based on Gaussian modulation, proving their finite-size security against coherent attacks poses a challenge. In this work we prove finite-size security against coherent attacks for a discrete-modulated quantum key distribution protocol involving four coherent states and heterodyne detection. To do so, and contrary to most of the existing schemes, we first discretize all the continuous variables generated during the protocol. This allows us to use the entropy accumulation theorem, a tool that has previously been used in the setting of discrete variables, to construct the finite-size security proof. We then compute the corresponding finite-key rates through semi-definite programming and under a photon-number cutoff. Our analysis provides asymptotic rates in the range of $0.1-10^{-4}$ bits per round for distances up to hundred kilometres, while in the finite case and for realistic parameters, we get of the order of $10$ Gbits of secret key after $n\sim10^{11}$ rounds and distances of few tens of kilometres.
format Preprint
id arxiv_https___arxiv_org_abs_2303_09255
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Security of discrete-modulated continuous-variable quantum key distribution
Bäuml, Stefan
Pascual-García, Carlos
Wright, Victoria
Fawzi, Omar
Acín, Antonio
Quantum Physics
Continuous variable quantum key distribution with discrete modulation has the potential to provide information-theoretic security using widely available optical elements and existing telecom infrastructure. While their implementation is significantly simpler than that for protocols based on Gaussian modulation, proving their finite-size security against coherent attacks poses a challenge. In this work we prove finite-size security against coherent attacks for a discrete-modulated quantum key distribution protocol involving four coherent states and heterodyne detection. To do so, and contrary to most of the existing schemes, we first discretize all the continuous variables generated during the protocol. This allows us to use the entropy accumulation theorem, a tool that has previously been used in the setting of discrete variables, to construct the finite-size security proof. We then compute the corresponding finite-key rates through semi-definite programming and under a photon-number cutoff. Our analysis provides asymptotic rates in the range of $0.1-10^{-4}$ bits per round for distances up to hundred kilometres, while in the finite case and for realistic parameters, we get of the order of $10$ Gbits of secret key after $n\sim10^{11}$ rounds and distances of few tens of kilometres.
title Security of discrete-modulated continuous-variable quantum key distribution
topic Quantum Physics
url https://arxiv.org/abs/2303.09255