Gaussian state-based quantum illumination with simple photodetection

H Yang, W Roga, JD Pritchard, J Jeffers - Optics Express, 2021 - opg.optica.org
Optics Express, 2021opg.optica.org
Proofs of the quantum advantage available in imaging or detecting objects under quantum
illumination can rely on optimal measurements without specifying what they are. We use the
continuous-variable Gaussian quantum information formalism to show that quantum
illumination is better for object detection compared with coherent states of the same mean
photon number, even for simple direct photodetection. The advantage persists if signal
energy and object reflectivity are low and background thermal noise is high. The advantage …
Proofs of the quantum advantage available in imaging or detecting objects under quantum illumination can rely on optimal measurements without specifying what they are. We use the continuous-variable Gaussian quantum information formalism to show that quantum illumination is better for object detection compared with coherent states of the same mean photon number, even for simple direct photodetection. The advantage persists if signal energy and object reflectivity are low and background thermal noise is high. The advantage is even greater if we match signal beam detection probabilities rather than mean photon number. We perform all calculations with thermal states, even for non-Gaussian conditioned states with negative Wigner functions. We simulate repeated detection using a Monte-Carlo process that clearly shows the advantages obtainable.
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