Asymmetric mode-pairing quantum key distribution

Fuente: arXiv
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Main Authors: Lu, Zeyang, Wang, Gang, Li, Chan, Cao, Zhu
Format: Preprint
Published: 2024
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_version_ 1866910286431125504
author Lu, Zeyang
Wang, Gang
Li, Chan
Cao, Zhu
author_facet Lu, Zeyang
Wang, Gang
Li, Chan
Cao, Zhu
contents Mode-pairing quantum key distribution (MP-QKD) can surpass the repeaterless rate-transmittance bound (Pirandola-Laurenza-Ottaviani-Banchi bound) without requiring global phase locking, exhibiting remarkable flexibility. However, MP-QKD necessitates equal communication distances in two channels, which is a challenging requirement in practical applications. To address this limitation, we extend the original MP-QKD to asymmetric cases. Our decoy-state estimation confirms that asymmetric channel transmittances and asymmetric intensities do not compromise the security of the protocol. We focus on the pulse-intensity relationship, a key factor for optimizing the performance of asymmetric MP-QKD. Unlike previous asymmetric protocols, the intensities of different bases in asymmetric MP-QKD cannot be decoupled. We introduce an optimal-pulse-intensity method, adaptable to various scenarios, to enhance key rates by calculating ideal pulse intensities. Simulation results in various representative scenarios indicate that our method effectively reduces the impact of asymmetric channel distances on MP-QKD performance, enhancing its practical applicability.
format Preprint
id arxiv_https___arxiv_org_abs_2401_01727
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Asymmetric mode-pairing quantum key distribution
Lu, Zeyang
Wang, Gang
Li, Chan
Cao, Zhu
Quantum Physics
Mode-pairing quantum key distribution (MP-QKD) can surpass the repeaterless rate-transmittance bound (Pirandola-Laurenza-Ottaviani-Banchi bound) without requiring global phase locking, exhibiting remarkable flexibility. However, MP-QKD necessitates equal communication distances in two channels, which is a challenging requirement in practical applications. To address this limitation, we extend the original MP-QKD to asymmetric cases. Our decoy-state estimation confirms that asymmetric channel transmittances and asymmetric intensities do not compromise the security of the protocol. We focus on the pulse-intensity relationship, a key factor for optimizing the performance of asymmetric MP-QKD. Unlike previous asymmetric protocols, the intensities of different bases in asymmetric MP-QKD cannot be decoupled. We introduce an optimal-pulse-intensity method, adaptable to various scenarios, to enhance key rates by calculating ideal pulse intensities. Simulation results in various representative scenarios indicate that our method effectively reduces the impact of asymmetric channel distances on MP-QKD performance, enhancing its practical applicability.
title Asymmetric mode-pairing quantum key distribution
topic Quantum Physics
url https://arxiv.org/abs/2401.01727