randextract: a Reference Library to Test and Validate Privacy Amplification Implementations

Fuente: arXiv
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Main Authors: Veiga, Iyán Méndez, Hänggi, Esther
Format: Preprint
Published: 2025
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author Veiga, Iyán Méndez
Hänggi, Esther
author_facet Veiga, Iyán Méndez
Hänggi, Esther
contents Quantum cryptographic protocols do not rely only on quantum-physical resources, they also require reliable classical communication and computation. In particular, the secrecy of any quantum key distribution protocol critically depends on the correct execution of the privacy amplification step. This is a classical post-processing procedure transforming a partially secret bit string, known to be somewhat correlated with an adversary, into a shorter bit string that is close to uniform and independent of the adversary's knowledge. It is typically implemented using randomness extractors. Standardization efforts in quantum cryptography have focused on the security of physical devices and quantum operations. Future efforts should also consider all algorithms used in classical post-processing, especially in privacy amplification, due to its critical role in ensuring the final security of the key. We present randextract, a reference library to test and validate privacy amplification implementations.
format Preprint
id arxiv_https___arxiv_org_abs_2506_00124
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle randextract: a Reference Library to Test and Validate Privacy Amplification Implementations
Veiga, Iyán Méndez
Hänggi, Esther
Quantum Physics
Cryptography and Security
Quantum cryptographic protocols do not rely only on quantum-physical resources, they also require reliable classical communication and computation. In particular, the secrecy of any quantum key distribution protocol critically depends on the correct execution of the privacy amplification step. This is a classical post-processing procedure transforming a partially secret bit string, known to be somewhat correlated with an adversary, into a shorter bit string that is close to uniform and independent of the adversary's knowledge. It is typically implemented using randomness extractors. Standardization efforts in quantum cryptography have focused on the security of physical devices and quantum operations. Future efforts should also consider all algorithms used in classical post-processing, especially in privacy amplification, due to its critical role in ensuring the final security of the key. We present randextract, a reference library to test and validate privacy amplification implementations.
title randextract: a Reference Library to Test and Validate Privacy Amplification Implementations
topic Quantum Physics
Cryptography and Security
url https://arxiv.org/abs/2506.00124