Numerical security analysis for practical quantum key distribution

Fuente: arXiv
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Hauptverfasser: Navarrete, Álvaro, Currás-Lorenzo, Guillermo, Pereira, Margarida, Curty, Marcos
Format: Preprint
Veröffentlicht: 2026
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author Navarrete, Álvaro
Currás-Lorenzo, Guillermo
Pereira, Margarida
Curty, Marcos
author_facet Navarrete, Álvaro
Currás-Lorenzo, Guillermo
Pereira, Margarida
Curty, Marcos
contents Quantum key distribution (QKD) promises information-theoretic security based on quantum mechanics and idealized device models. Practical implementations, however, deviate from these models due to unavoidable device imperfections, and existing security proofs fall short of capturing the complexity of real-world systems. Here we introduce a versatile numerical finite-key security framework valid against general coherent attacks and applicable to a broad class of practical QKD setups. It accommodates most relevant imperfections at both transmitter and receiver, including non-independent-and-identically-distributed (non-IID) signals arising in high-speed QKD systems due to the limited bandwidth of optical modulators, while requiring only partial characterization of the apparatuses. We demonstrate the power of our framework by proving the security of a realistic decoy-state QKD implementation with laser sources, providing a practical route towards rigorous security certification of real-world QKD setups.
format Preprint
id arxiv_https___arxiv_org_abs_2605_12984
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Numerical security analysis for practical quantum key distribution
Navarrete, Álvaro
Currás-Lorenzo, Guillermo
Pereira, Margarida
Curty, Marcos
Quantum Physics
Quantum key distribution (QKD) promises information-theoretic security based on quantum mechanics and idealized device models. Practical implementations, however, deviate from these models due to unavoidable device imperfections, and existing security proofs fall short of capturing the complexity of real-world systems. Here we introduce a versatile numerical finite-key security framework valid against general coherent attacks and applicable to a broad class of practical QKD setups. It accommodates most relevant imperfections at both transmitter and receiver, including non-independent-and-identically-distributed (non-IID) signals arising in high-speed QKD systems due to the limited bandwidth of optical modulators, while requiring only partial characterization of the apparatuses. We demonstrate the power of our framework by proving the security of a realistic decoy-state QKD implementation with laser sources, providing a practical route towards rigorous security certification of real-world QKD setups.
title Numerical security analysis for practical quantum key distribution
topic Quantum Physics
url https://arxiv.org/abs/2605.12984