论文标题
嘈杂传播通道的量子计量学
Quantum metrology of noisy spreading channels
论文作者
论文摘要
我们为一类嘈杂的通道提供了最佳的测量策略,这些噪声通道将参数的特定值(扩展通道)减少到身份通道。我们提供了一个在物理上相关的示例:在存在随机噪声的情况下,位移的绝对值估计。令人惊讶的是,这种噪声不会影响最佳测量的有效性。我们表明,对于较小的位移,在具有相同平均能量的策略中,挤压真空探头场是最佳的。挤压器然后进行光反检测是最佳检测策略,该策略获得了量子渔民信息,而通常使用的同伴检测在小位移的极限下变得无用,因为相同的效果使雷利在光学级别中的诅咒具有相同的效果。有一个量子优势:平均光子的挤压状态或一个fock状态允许渐近地估算出比具有相同能量的经典状态的$ \ sqrt {n} $更好的精度。
We provide the optimal measurement strategy for a class of noisy channels that reduce to the identity channel for a specific value of a parameter (spreading channels). We provide an example that is physically relevant: the estimation of the absolute value of the displacement in the presence of phase randomizing noise. Surprisingly, this noise does not affect the effectiveness of the optimal measurement. We show that, for small displacement, a squeezed vacuum probe field is optimal among strategies with same average energy. A squeezer followed by photodetection is the optimal detection strategy that attains the quantum Fisher information, whereas the customarily used homodyne detection becomes useless in the limit of small displacements, due to the same effect that gives Rayleigh's curse in optical superresolution. There is a quantum advantage: a squeezed or a Fock state with $N$ average photons allow to asymptotically estimate the parameter with a $\sqrt{N}$ better precision than classical states with same energy.