Analytic R\'enyi Entropy Bounds for Device-Independent Cryptography
Abstract
Device-independent (DI) cryptography represents the highest level of security, enabling cryptographic primitives to be executed safely on uncharacterized devices. Moreover, with successful proof-of-concept demonstrations in randomness expansion, randomness amplification, and quantum key distribution, the field is steadily advancing toward commercial viability. Critical to this continued progression is the development of tighter finite-size security proofs. In this work, we provide a simple method to obtain tighter finite-size security proofs for protocols based on the CHSH game, which is the nonlocality test used in all of the proof-of-concept experiments. We achieve this by analytically solving key-rate optimization problems based on R\'enyi entropies, providing a simple method to obtain tighter finite-size key rates.
Keywords
Cite
@article{arxiv.2507.07365,
title = {Analytic R\'enyi Entropy Bounds for Device-Independent Cryptography},
author = {Thomas A. Hahn and Aby Philip and Ernest Y. -Z. Tan and Peter Brown},
journal= {arXiv preprint arXiv:2507.07365},
year = {2025}
}
Comments
36 pages, 1 figure