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Quantum sensing of phase-covariant optical channels

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arxiv 2306.15256 v1 pith:EY6MMP5N submitted 2023-06-27 quant-ph physics.optics

classification quant-phphysics.optics
keywords sensingchannelschannelconstraintsproblemquantumunderuniversal
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We obtain universal (i.e., probe and measurement-independent) performance bounds on ancilla-assisted quantum sensing of multiple parameters of phase-covariant optical channels under energy and mode-number constraints. We first show that for any such constrained problem, an optimal ancilla-entangled probe can always be found whose reduced state on the modes probing the channel is diagonal in the photon-number basis. For parameters that are encoded in single-mode Gaussian channels, we derive a universal upper bound on the quantum Fisher information matrix that delineates the roles played by the energy and mode constraints. We illustrate our results for sensing of the transmittance of a thermal loss channel under both the no-passive-signature and passive-signature paradigms, and in the problem of sensing the noise variance of an additive-noise channel. In both cases, we show that two-mode squeezed vacuum probes are near-optimal under the constraints in the regime of low signal brightness, i.e., per-mode average photon number. More generally, our work sets down a uniform framework for readily evaluating universal limits for any sensing problem involving Gaussian channels.

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Cited by 2 Pith papers

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    quant-ph 2026-07 accept novelty 6.5 of 10

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  2. Quantum illumination advantage in quantum Doppler radar

    quant-ph 2024-11 conditional novelty 6.0 of 10

    SPDC-based quantum illumination gives a 3 dB (factor 2) quantum Fisher information advantage over coherent states for Doppler velocity estimation in high thermal noise and low signal photon number.

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