Optimum mixed-state discrimination for noisy entanglement-enhanced sensing
arXiv:1609.01968 · doi:10.1103/PhysRevLett.118.040801
Abstract
Quantum metrology utilizes nonclassical resources, such as entanglement or squeezed light, to realize sensors whose performance exceeds that afforded by classical-state systems. Environmental loss and noise, however, easily destroy nonclassical resources, and thus nullify the performance advantages of most quantum-enhanced sensors. Quantum illumination (QI) is different. It is a robust entanglement-enhanced sensing scheme whose 6 dB performance advantage over a coherent-state sensor of the same average transmitted photon number survives the initial entanglement's eradication by loss and noise. Unfortunately, an implementation of the optimum quantum receiver that would reap QI's full performance advantage has remained elusive, owing to its having to deal with a huge number of very noisy optical modes. We show how sum-frequency generation (SFG) can be fruitfully applied to optimum multi-mode Gaussian-mixed-state discrimination. Applied to QI, our analysis and numerical evaluations demonstrate that our SFG receiver saturates QI's quantum Chernoff bound. Moreover, augmenting our SFG receiver with a feed-forward (FF) mechanism pushes its performance to the Helstrom bound in the limit of low signal brightness. The FF-SFG receiver thus opens the door to optimum quantum-enhanced imaging, radar detection, state and channel tomography, and communication in practical Gaussian-state situations.
15 pages, 5 figures, missing references corrected
References in corpus (17)
- Quantum Illumination with Gaussian States
- The Quantum Chernoff Bound
- Microwave Quantum Illumination
- Quantum Illumination at the Microwave Wavelengths
- Experimental realisation of quantum illumination
- On-Chip Detection of Entangled Photons by Scalable Integration of Single-Photon Detectors
- Entanglement-Enhanced Sensing in a Lossy and Noisy Environment
- Gaussian-state quantum-illumination receivers for target detection
- Entanglement-enhanced measurement of a completely unknown phase
- Quantum-enhanced optical phase tracking
- Discrimination of the binary coherent signal: Gaussian-operation limit and simple non-Gaussian near-optimal receivers
- Efficient Quantum Circuits for Schur and Clebsch-Gordan Transforms
- Computable bounds for the discrimination of Gaussian states
- Demonstration of near-Optimal Discrimination of Optical Coherent States
- Local discrimination of mixed states
- Experimental Realization of Maximum Confidence State Discrimination for the Extraction of Quantum Information
- Binary projective measurement via linear optics and photon counting
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- Experimental Quantum Target Detection Approaching the Fundamental Helstrom Limit
- Gaussian State-Based Quantum Illumination with Simple Photodetection
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- Noise-robust single-pixel imaging in photon counting regime with a pulsed source
- Ultimate limits of approximate unambiguous discrimination
- Optimizing single-photon quantum radar detection through partially postselected filtering
- Entanglement-Enhanced Lidars for Simultaneous Range and Velocity Measurements
- Optical ranging with quantum advantage