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    Enhanced simultaneous quantum-classical communications under composable security

    Nicholas Zaunders1,2,*, Ziqing Wang2, Robert Malaney2, Ryan Aguinaldo3, and Timothy C. Ralph1

    • *Contact author: n.zaunders@uq.edu.au

    Phys. Rev. A 112, 042608 – Published 8 October, 2025

    DOI: https://doi.org/10.1103/p34s-5217

    Abstract

    Simultaneous quantum-classical communications (SQCC) protocols are a family of continuous-variable quantum key distribution (CV-QKD) protocols that allow for quantum and classical symbols to be integrated concurrently on the same optical pulse and mode. In this work, we present a revised analysis of simultaneous quantum-classical communications in Gaussian-modulated coherent-state CV-QKD protocols. We address security concerns inherently associated with SQCC schemes and provide an updated model of the coupling between the classical and quantum channels. We provide evidence for our model via Monte Carlo simulation. We compute the performance of our revised SQCC protocol in terms of the secret-key generation rate optimized over free parameters and demonstrate improved quantum efficiency for a given classical bit-error rate. Lastly, we extend our analysis into the finite-key regime, where we propose a scheme for composably secure SQCC under realistic operating conditions and demonstrate that our scheme retains the advantage in quantum performance over previous models.

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