光学探测器效率的量子增强估计

M. Barbieri, A. Datta, T. Bartley, Xian-min Jin, W. Kolthammer, I. Walmsley
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引用次数: 3

摘要

量子力学通过确定最佳探针状态和测量值来确定任意参数的精度缩放的极限。虽然这种范式至少在原则上足以用于涉及相位和损耗参数估计的量子通道的计量,但我们表明,估计与量子通道和实际量子探测器相关的损耗参数是根本不同的。虽然Fock状态对于前者是可证明的最优状态,但我们使用Fisher信息作为基准,确定了最优探针状态性质中的交叉,用于估计检测器缺陷作为损失参数的函数。我们以Fock态和相干态作为探针,给出了在量子光子学技术中应用最广泛的开关和同差探测器的理论结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quantum enhanced estimation of optical detector efficiencies
Abstract Quantum mechanics establishes the ultimate limit to the scaling of the precision on any parameter, by identifying optimal probe states and measurements. While this paradigm is, at least in principle, adequate for the metrology of quantum channels involving the estimation of phase and loss parameters, we show that estimating the loss parameters associated with a quantum channel and a realistic quantum detector are fundamentally different. While Fock states are provably optimal for the former, we identify a crossover in the nature of the optimal probe state for estimating detector imperfections as a function of the loss parameter using Fisher information as a benchmark. We provide theoretical results for on-off and homodyne detectors, the most widely used detectors in quantum photonics technologies, when using Fock states and coherent states as probes.
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