13
collaborators
2025–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
5 Posters
| Title | Conference | Co-authors |
|---|---|---|
|
Finite-size quantum key distribution rates from Rényi entropies using conic optimization ↗
|
QCRYPT 2026 | Andrés González Lorente, Pablo V. Parellada, Carlos Pascual-Garcia, Mateus Araújo |
Finite-size general security proofs for quantum key distribution based on Rényi entropies have recently been introduced. These approaches are more flexible and provide tighter bounds on the secret key rate than traditional formulations based on the von Neumann entropy. However, deploying them requires minimizing the conditional Rényi entropy, a difficult optimization problem that has hitherto been tackled using ad-hoc techniques based on the Frank-Wolfe algorithm, which are unstable and can only handle particular cases. In this work, we introduce a method based on non-symmetric conic optimization for solving this problem. Our technique is fast, reliable, and completely general. We illustrate its performance on several protocols, whose results represent an improvement over the state of the art. |
||
| Effective discrete-modulated CVQKD under general attacks | QCRYPT 2026 | Antonio Acin, Carlos Pascual |
Continuous variable quantum key distribution via discrete modulations (DM CVQKD) ensures information-theoretic security using standard telecom technologies, providing affordable and scalable quantum communications with simplified classical postprocessing. However, existing security proofs against general attacks often rely on restrictive assumptions, such as a bounded dimension for coherent states, or require impractically large block sizes. In this work, we develop a finite-size security analysis that removes these limitations while incorporating realistic experimental features. Our approach combines the dimension reduction technique, a security proof based on the marginal-constrained entropy accumulation, and a trusted detector model accounting for the receiver imperfections. We report positive key rates in the finite-size regime for relevant block sizes of the order of 10^8. These results contribute to narrowing the gap between theoretical security proofs and practical implementations of DM CVQKD systems. |
||
| Sampling Groups of Pauli Operators to Enhance Direct Fidelity Estimation | QIP 2026 | ▸Júlia Barberà Rodríguez, Leonardo Zambrano |
| Finite-size QKD rates from Rényi entropies using conic optimization | TQC 2026 | Andrés González Lorente, Pablo V. Parellada, Carlos Pascual García, Mateus Araújo |
Finite-size general security proofs for QKD based on Rényi entropies offer more flexible and provide tighter bounds on the secret key rate than traditional formulations based on the von Neumann entropy. However, deploying them requires minimizing the conditional Rényi entropy, a difficult optimization problem that has commonly been tackled using ad-hoc techniques based on the Frank-Wolfe algorithm, which are unstable and can only handle particular cases. In this work, we introduce a method based on non-symmetric conic optimization for solving this problem. Our technique is fast, reliable, and completely general. We illustrate its performance on several protocols, whose results represent an improvement over the state of the art. |
||
| Long-distance DIQKD using single-photon entanglement | QCRYPT 2025 | Anna Steffinlongo, Marina Cenni, Xavier Valcarce, Antonio Acin, Enky Outdot |
Device-independent quantum key distribution (DIQKD) provides the strongest form of quantum security, as it allows two honest users to establish secure communication channels even when using fully uncharacterized quantum devices. The security proof of DIQKD is derived from the violation of a Bell inequality, mitigating side-channel attacks by asserting the presence of nonlocality. This enhanced security comes at the cost of a challenging implementation, especially over long distances, as losses make Bell tests difficult to conduct successfully. Here, we propose a photonic realization of DIQKD, utilizing a heralded preparation of a single-photon path entangled state between the honest users. Being based on single-photon interference effects, the obtained secret key rate scales with the square root of the quantum channel transmittance. This leads to positive key rates over distances of up to hundreds of kilometers, making the proposed setup a promising candidate for securing long-distance communication in quantum networks. |
||
Collaborators
| Co-author | Joint talks |
|---|---|
| Andrés González Lorente | 2 |
| Antonio Acin | 2 |
| Mateus Araújo | 2 |
| Pablo V. Parellada | 2 |
| Anna Steffinlongo | 1 |
| Carlos Pascual | 1 |
| Carlos Pascual García | 1 |
| Carlos Pascual-Garcia | 1 |
| Enky Outdot | 1 |
| Júlia Barberà Rodríguez | 1 |
| Leonardo Zambrano | 1 |
| Marina Cenni | 1 |
| Xavier Valcarce | 1 |