0
talks
2
posters
0
committee roles
0
leadership roles
2024–2025
years active
Posters
| Title | Conference | Co-authors |
|---|---|---|
| Accurate Shot Noise Calibration Accounting for Noise Dynamics in CV-QKD | QCRYPT 2025 | Guillaume Ricard, Romain Alléaume |
Continous-Variable Quantum Key Distribution (CV-QKD) relies on accurate noise calibration at the receiver to ensure the security of quantum communication. Traditional calibration methods often oversimplify noise characteristics, neglecting the impact of local oscillator (LO) noise and the critical role of noise dynamics, which can lead to imprecise Shot Noise Calibration (SNC). Our contributions are threefold: 1) we propose an operational framework for calibration, relying on the notion of stationarity 2) in this framework, we give a method allowing to derive the optimal calibration time 3) leveraging our knowledge of noise dynamics, we introduce a novel SNC method. We demonstrate that our improved calibration techniques offer higher performance and higher tolerance to receiver defects, which can enhance the performance and cost-effectiveness of CV-QKD systems. |
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| Post-Quantum Cryptographically-Secured Trusted Node for Quantum Key Distribution in a Deployed Network | QCRYPT 2024 | Yoann Piétri, Pierre-Enguerrand Verdier, Baptiste Lacour, Maxime Gautier, Heming Huang, Thomas Camus, Jean-Sébastien Pegon, Martin Zuber, Jean-Charles Faugère, Matteo Schiavon, Amine Rhouni, Nicolas Fabre, Romain Alléaume, Thomas Rivera, Eleni Diamanti |
Quantum Key Distribution (QKD) is arguably the most mature application of principles of quantum mechanics to cryptography, and several lab and field demonstrations have been realized. However the realization of QKD in deployed networks, with high distances and/or complex network architecture is still a challenge. Trusted nodes is a known solution to these issues, but requires the delegation of trust to third parties. Here, we propose a trusted node protocol where the requirements of trust delegation are lowered, with no overhead in the consumption of the key exchanged with QKD, allowing to keep the same secret key rate. This protocol is then applied to 2 links in the Parisian Quantum Network, composed of dark dedicated fibers between 8 nodes in the Parisian region, for a total fiber distance of 57 km. Our results show the overall key exchange with no degradation of the key rate. |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Romain Alléaume | 2 |
| Amine Rhouni | 1 |
| Baptiste Lacour | 1 |
| Eleni Diamanti | 1 |
| Guillaume Ricard | 1 |
| Heming Huang | 1 |
| Jean-Charles Faugère | 1 |
| Jean-Sébastien Pegon | 1 |
| Martin Zuber | 1 |
| Matteo Schiavon | 1 |
| Maxime Gautier | 1 |
| Nicolas Fabre | 1 |
| Pierre-Enguerrand Verdier | 1 |
| Thomas Camus | 1 |
| Thomas Rivera | 1 |
| Yoann Piétri | 1 |