Fundamental Limits of Covert Communication over Classical-Quantum Channels
Abstract
We investigate covert communication over general memoryless classical-quantum channels with fixed finite-size input alphabets. We show that the square root law (SRL) governs covert communication in this setting when product of input states is used: covert bits (but no more) can be reliably transmitted in uses of classical-quantum channel, where is a channel-dependent constant that we call covert capacity. We also show that ensuring covertness requires bits secret shared by the communicating parties prior to transmission, where is a channel-dependent constant. We assume a quantum-powerful adversary that can perform an arbitrary joint (entangling) measurement on all channel uses. We determine the single-letter expressions for and , and establish conditions when (i.e., no pre-shared secret is needed). Finally, we evaluate the scenarios where covert communication is not governed by the SRL.
Keywords
Cite
@article{arxiv.1601.06826,
title = {Fundamental Limits of Covert Communication over Classical-Quantum Channels},
author = {Michael S. Bullock and Azadeh Sheikholeslami and Mehrdad Tahmasbi and Robert C. Macdonald and Saikat Guha and Boulat A. Bash},
journal= {arXiv preprint arXiv:1601.06826},
year = {2025}
}
Comments
Corrected typos, 50 pages, 2 figures, accepted by IEEE Transactions on Information Theory