52
collaborators
2018–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
2 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Experimental quantum key distribution certified by Bell’s theorem | QIP 2023 | regular | David Nadlinger, Peter Drmota, Bethan Nichol, Gabriel Araneda, Dougal Main, Raghavendra Srinivas, David Lucas, Chris Ballance, Kirill Ivanov, Ernest Y. -Z. Tan, Rüdiger Urbanke, Renato Renner, Nicolas Sangouard, ▸Jean-Daniel Bancal |
| Finite-size DIQKD with noisy preprocessing and random key measurements | QCRYPT 2021 | regular | Ernest Y. -Z. Tan, Xavier Valcarce, Jean-Daniel Bancal, René Schwonnek, Renato Renner, Nicolas Sangouard, Charles Ci Wen Lim |
The security of finite-length keys is essential for the implementation of device-independent quantum key distribution (DIQKD). Presently, there are several finite-size DIQKD security proofs, but they are mostly focused on standard DIQKD protocols and do not directly apply to the recent improved DIQKD protocols based on techniques such as noisy preprocessing and random key measurements. Here, we provide a general finite-size security proof that can simultaneously encompass these approaches, using tighter finite-size bounds than previous analyses. In doing so, we develop a method to compute tight lower bounds on the asymptotic keyrate for any such DIQKD protocol with binary inputs and outputs. With this, we show that positive asymptotic keyrates are achievable up to depolarizing noise values of 9.26%, exceeding all previously known noise thresholds. Furthermore, we also consider in greater detail a particular form of generalized CHSH inequality, and derive partial closed-form results for such cases. We discuss the potential advantage of this approach for realistic photonic implementations of DIQKD. |
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13 Posters
| Title | Conference | Co-authors |
|---|---|---|
| The power of catalytic local operations: State transformations and activation of Bell nonlocality | QIP 2026 | ▸Jessica Bavaresco, Nicolas Brunner, Antoine Girardin, Patryk Lipka-Bartosik |
| Self-testing a quantum switch | QIP 2024 | Victor Barizien, Cyril Branciard, Alastair A. Abbott, Jean-Daniel Bancal |
| Topologically Robust Quantum Network Nonlocality | TQC 2024 | Tamás Kriváchy, Sadra Boreiri, Antoine Girardin, Nicolas Brunner |
| Noise-robust proofs of quantum network nonlocality | TQC 2024 | Sadra Boreiri, Bora Ulu, Nicolas Brunner |
| Fundamental limits of metrology at thermal equilibrium | TQC 2024 | Paolo Abiuso, John Calsamiglia, Marti Perarnau-Llobet |
| High-dimensional measurement incompatibility and steering | QIP 2023 | Benjamin Jones, Roope Uola, Thomas Cope, Marie Ioannou, Sébastien Designolle, Nicolas Brunner |
| Towards a minimal example of quantum nonlocality without inputs and Topologically robust network nonlocality | QIP 2023 | Sadra Boreiri, Antoine Girardin, Bora Ulu, Patryk Lipka-Bartosik, Nicolas Brunner |
| Partial self-testing and randomness certification in networks | QIP 2023 | Sadra Boreiri, Nicolas Brunner |
| Automated quantum optical experiment design for device-independent quantum key distribution | QCRYPT 2022 | Xavier Valcarce, Élie Gouzien, Jean-Daniel Bancal, Nicolas Sangouard |
| Quantum Key Distribution with Few Assumptions | QCRYPT 2021 | Marie Ioannou, Maria Ana Afonso Pereira, Davide Rusca, Fadri Grünenfelder, Alberto Boaron, Matthieu Perrenoud, Alastair A. Abbott, Jean-Daniel Bancal, Nicolas Maring, Hugo Zbinden, Nicolas Brunner |
We investigate a class of partially device-independent quantum key distribution protocols based on a prepare-and-measure setup which simplifies their implementation. The security of the protocols is based on the assumption that Alice’s prepared states have limited overlaps, but no explicit bound on the Hilbert space dimension is required. The protocols are therefore immune to attacks on Bob’s device, such as blinding attacks. The users can establish a secret key while continuously monitoring the correct functioning of their devices through observed statistics. We report a proof- of-principle demonstration, involving mostly off-the-shelf equipment, as well as a high-efficiency superconducting nanowire detector. A positive key rate is demonstrated over a 4.8km low-loss optical fiber with finite-key analysis. The prospects of implementing these protocols over longer distances is discussed. |
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| Noisy pre-processing facilitating a photonic realisation of device-independent quantum key distribution | QCRYPT 2020 | Melvyn Ho, Ernest Y. -Z. Tan, Renato Renner, Jean-Daniel Bancal, Nicolas Sangouard |
Device-independent quantum key distribution provides security even when the equipment used to communicate over the quantum channel is largely uncharacterized. An experimental demonstration of device-independent quantum key distribution is however challenging. A central obstacle in photonic implementations is that the global detection efficiency, i.e., the probability that the signals sent over the quantum channel are successfully received, must be above a certain threshold. We here propose a method to significantly relax this threshold, while maintaining provable device-independent security. This is achieved with a protocol that adds artificial noise, which cannot be known or controlled by an adversary, to the initial measurement data (the raw key). Focusing on a realistic photonic setup using a source based on spontaneous parametric down conversion, we give explicit bounds on the minimal required global detection efficiency. |
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| Adaptive quantum metrology under general Markovian noise | QIP 2018 | Rafał Demkowicz-Dobrzański, Jan Czajkowski |
| Flexible resources for quantum metrology | QIP 2018 | Davide Orsucci, Nicolai Friis, Michalis Skotiniotis, Vedran Dunjko, Hans Briegel, Wolfgang Dür |
Collaborators
| Co-author | Joint talks |
|---|---|
| Nicolas Brunner | 7 |
| Jean-Daniel Bancal | 6 |
| Nicolas Sangouard | 4 |
| Sadra Boreiri | 4 |
| Antoine Girardin | 3 |
| Ernest Y. -Z. Tan | 3 |
| Renato Renner | 3 |
| Alastair A. Abbott | 2 |
| Bora Ulu | 2 |
| Marie Ioannou | 2 |
| Patryk Lipka-Bartosik | 2 |
| Xavier Valcarce | 2 |
| Alberto Boaron | 1 |
| Benjamin Jones | 1 |
| Bethan Nichol | 1 |
| Charles Ci Wen Lim | 1 |
| Chris Ballance | 1 |
| Cyril Branciard | 1 |
| David Lucas | 1 |
| David Nadlinger | 1 |