Skip to content
Open access

Boosting Information Reconciliation for Decoy-State Quantum Key Distribution Over a Satellite Downlink Channel

2026 · IEEE Transactions on Quantum Engineering · Vol 7, pp. 4101812-4101812 · 0 citations · 37 references

TL;DR

Leveraging the a priori information on the instantaneous QBER, the efficiency of information reconciliation in the Decoy-State BB84 protocol is improved, resulting in a secure key that is almost 3% longer for realistic scenarios, with no computational or hardware complexity overhead.

Abstract

Quantum Key Distribution (QKD) is a cryptographic solution that leverages the properties of quantum mechanics to be resistant and secure even against an attacker with unlimited computational power. Satellite-based links are important in QKD because they can reach distances that the best fiber systems cannot. However, links between satellites in low Earth orbit and ground stations have a duration of only a few minutes, resulting in the generation of a small amount of secure keys. In this context, we investigate the optimization of the information reconciliation step of the QKD postprocessing in order to generate as much secure key as possible. As a first step, we build an accurate model of the downlink signal and Quantum Bit Error Rate (QBER) during a complete satellite pass, which are time-varying due to three effects: 1 the varying link geometry over time; 2) the scintillation effect; and 3) the different signal intensities adopted in the Decoy-State protocol. Leveraging the a priori information on the instantaneous QBER, we improve the efficiency of information reconciliation (i.e., the error correction phase) in the Decoy-State BB84 protocol, resulting in a secure key that is almost 3% longer for realistic scenarios, with no computational or hardware complexity overhead.

Read PDF

Similar papers

Sep 2026

Using Holevo bound for leakage estimation in quantum key distribution

Side-channel imperfections in quantum key distribution (QKD) are often treated within the GLLP and Koashi framework, which typically produces overly conservative key-rate estimates. Conditional-entropy approaches based on the Holevo bound provide a less pessimistic alternative but must correctly account for post-select...

I. Sushchev, Kirill Bugai, D. Bulavkin et al. · 0 citations
Preprint Aug 2026

Quantum Secure Time Transfer for Satellites

We experimentally demonstrate an entanglement-based Quantum-Secure Time Transfer (QSTT) system in an emulated low Earth orbit satellite-to-ground channel using a type-0 Sagnac-based entangled-photon source. Our new QSTT system delivers a finite Quantum Key Distribution (QKD) key rate of approximately $3~$bits$~\text{s}...

Ravi Singh Adhikari, Anju Rani, Aman Gupta et al. · 1 citation
Preprint Jul 2026

Quantum key distribution over a 2 km free-space channel with a high secure key rate

Free-space quantum key distribution (QKD) provides crucial advantages, including mobility and deployment flexibility, for securing next-generation communication networks. However, practical free-space implementations face major challenges, such as muilti-photon vulnerabilities, spatial mode mismatch, and atmospheric tu...

Kyungdeuk Park, Dongkyu Kim, Dong-Gil Im et al. · 0 citations
Open access Aug 2026

QUEST: A Simulation-Based QKD Architecture with Eight-State Time-Bin Modulation and Adaptive Homodyne–Heterodyne Detection

ModPhase-8 is introduced, a proposed QKD modulation and adaptive-receiver architecture evaluated through analytical modeling and simulation that provides an analytical security assessment under the stated collective-attack, source, channel, receiver, and trusted-device assumptions, supplemented by attack-specific analy...

Vidhya Prakash Rajendran, D. Perumalsamy, Basker Palaniswamy et al. · 1 citation
Preprint Aug 2026

Phase-error estimation for quantum key distribution with leaky receivers

Practical quantum key distribution (QKD) receivers may leak information about their measurement outcomes and settings to the channel (e.g., through detector backflashes or back-reflected Trojan-horse light) that could compromise the protocol's security. Here we present a simple finite-key security proof based on phase-...

Álvaro Navarrete, Margarida Pereira, Guillermo Currás-Lorenzo et al. · 0 citations
Preprint Sep 2026

Security framework for practical quantum key distribution with imperfect devices

Practical quantum key distribution (QKD) systems inevitably exhibit imperfections in both the source and detector. At the same time, the behavior of these imperfect devices is never exactly known due to characterization uncertainty, parameter fluctuations, and potential influence by an adversary. In this work, we prese...

Jerome Wiesemann, John Burniston, Devashish Tupkary et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.