English

Fundamental limits of quantum-secure covert optical sensing

Quantum Physics 2017-01-24 v1

Abstract

We present a square root law for active sensing of phase θ\theta of a single pixel using optical probes that pass through a single-mode lossy thermal-noise bosonic channel. Specifically, we show that, when the sensor uses an nn-mode covert optical probe, the mean squared error (MSE) of the resulting estimator θ^n\hat{\theta}_n scales as (θθ^n)2=O(1/n)\langle (\theta-\hat{\theta}_n)^2\rangle=\mathcal{O}(1/\sqrt{n}); improving the scaling necessarily leads to detection by the adversary with high probability. We fully characterize this limit and show that it is achievable using laser light illumination and a heterodyne receiver, even when the adversary captures every photon that does not return to the sensor and performs arbitrarily complex measurement as permitted by the laws of quantum mechanics.

Keywords

Cite

@article{arxiv.1701.06206,
  title  = {Fundamental limits of quantum-secure covert optical sensing},
  author = {Boulat A. Bash and Christos N. Gagatsos and Animesh Datta and Saikat Guha},
  journal= {arXiv preprint arXiv:1701.06206},
  year   = {2017}
}

Comments

13 pages, 1 figure, submitted to ISIT 2017

R2 v1 2026-06-22T17:56:35.963Z