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Eve's forgery probability from her false acceptance probability: interactive authentication, Holevo information and the min-entropy

arXiv
Authors: Pete Rigas

Year

2026

Paper ID

39145

Status

Preprint

Abstract Read

~2 min

Abstract Words

185

Citations

N/A

Abstract

We obtain estimates for Eve's forgery probability, namely the probability that she is able to forge a message which Alice or Bob mistakenly accept over a noisy Quantum channel for generating a shared Quantum secret key. This probability is related to Eve's success probability obtained in a previous work due to Renner and Wolf, which was obtained from assumptions on the min-entropy for characterizing asymmetric security. To demonstrate that protocols over noisy Quantum channels are dependent upon a single, unified security threshold in comparison to multiple security parameters in the Renner-Wolf interactive authentication protocol framework we upper bound Eve's forgery probability with a Holevo-type quantity that can be made negligibly small. By leveraging estimates for Eve's false acceptance probability that have previously been obtained by the author, we obtain the desired security threshold by bounding the false acceptance probability with a suitably chosen two-universal function which serves as a counterpart to two-universal hashing functions that have previously been examined for cryptographic protocols in Quantum key distribution. As a result the protocol is not only ε-secure, for some ε>0, but also composable against forgery and key leakage.

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  • This paper contributes to the Quantum Cryptography & Security research area in the Quantum Articles archive.
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  • We obtain estimates for Eve's forgery probability, namely the probability that she is able to forge a message which Alice or Bob mistakenly accept over a noisy Quantum channel...

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