English

Covert Signaling for Communication and Sensing over the Bosonic Channels

Quantum Physics 2026-05-11 v1 Information Theory math.IT

Abstract

Preventing signal detection in communication and active sensing requires careful control of transmission power. In fact, the square-root laws (SRL) for covert classical and quantum communication and sensing prescribe that the average output power per channel use scales as 1/n1/\sqrt{n} for nn channel uses. Two strategies for achieving this are diffuse and sparse signaling. The former transmits signals with power decaying as 1/n1/\sqrt{n} on all nn channel uses, which is convenient for mathematical analysis. The latter transmits constant-power signals rarely, on approximately n\sqrt{n} out of nn channel uses, while remaining silent on the others. This offers significant practical advantages in compatibility with modern digital transmitters. Here, we study sparse signaling over lossy thermal-noise bosonic channels, which describe quantumly many practical channels (including optical, microwave, and radio-frequency). We characterize the input signal state that minimizes detectability. We find an unintuitive optimal quantum state structure: a mixture of just two consecutive photon-number states. In particular, in the low-brightness regime, the optimal signal state is a mixture of vacuum and a single photon. Since these states are generally suboptimal for both communication and active sensing, we explore the resulting trade-off and identify input-power thresholds for transitions between optimizing for covertness vs. performance in communication and sensing tasks.

Keywords

Cite

@article{arxiv.2605.08066,
  title  = {Covert Signaling for Communication and Sensing over the Bosonic Channels},
  author = {Tianrui Tan and Evan J. D. Anderson and Michael S. Bullock and Boulat A. Bash},
  journal= {arXiv preprint arXiv:2605.08066},
  year   = {2026}
}

Comments

15 pages, 4 figures, draft, comments welcome