论文标题

使用自适应测量值有效的量子量相估计

Efficient qubit phase estimation using adaptive measurements

论文作者

Rodríguez-García, Marco A., Castillo, Isaac Pérez, Barberis-Blostein, P.

论文摘要

正确估计物理系统的量子相是量子参数估计理论中的一个核心问题,这是由于其从量子计量学到加密术的广泛应用范围。理想情况下,最佳量子估计器由所谓的量子cramér-rao结合给出,因此任何测量策略旨在使估计尽可能接近。但是,通常,估计量子阶段的当前最新方法无法达到这种界限,因为它们依赖于非可识别的可能性功能的最大似然估计器。在这项工作中,我们彻底回顾了各种方案,以估算量子位的阶段,确定了潜在的问题,这些问题禁止这些方法达到量子cramér-rao结合,并提出了基于协变量测量的新自适应方案,以解决此问题。我们的发现是通过蒙特卡洛模拟仔细检查的,表明我们提出的方法在数学上和实验上比当前可用的方法更现实,更有效。

Estimating correctly the quantum phase of a physical system is a central problem in quantum parameter estimation theory due to its wide range of applications from quantum metrology to cryptography. Ideally, the optimal quantum estimator is given by the so-called quantum Cramér-Rao bound, so any measurement strategy aims to obtain estimations as close as possible to it. However, more often than not, the current state-of-the-art methods to estimate quantum phases fail to reach this bound as they rely on maximum likelihood estimators of non-identifiable likelihood functions. In this work we thoroughly review various schemes for estimating the phase of a qubit, identifying the underlying problem which prohibits these methods to reach the quantum Cramér-Rao bound, and propose a new adaptive scheme based on covariant measurements to circumvent this problem. Our findings are carefully checked by Monte Carlo simulations, showing that the method we propose is both mathematically and experimentally more realistic and more efficient than the methods currently available.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源