论文标题

优化一轴曲折,以进行变分贝叶斯量子计量学

Optimizing one-axis twists for variational Bayesian quantum metrology

论文作者

Thurtell, Tyler G., Miyake, Akimasa

论文摘要

量子计量和传感在估算某些量子状态或通道的未知参数方面寻求优势,使用纠缠,例如由单轴扭曲或其他量子资源产生的旋转挤压。特别是,量子相位估计或旋转传感似乎是用于电场传感,磁力测定,原子钟和陀螺仪的无处不在的问题。通过对阶段估计问题采用贝叶斯形式主义,以说明有关阶段价值的初始知识有限,我们制定了变分学计量,并将状态制备(或编码)和测量(或解码)程序视为参数化的量子电路。重要的是要了解各种参数化协议的有效性以及它们对复杂噪声(如空间相关噪声)的影响的鲁棒程度。首先,我们提出了一个称为任意轴扭曲Ansatzes的新的参数化编码和解码协议,并表明它可以大大减少达到目标估计误差所需的单轴曲折数量。此外,我们证明,与这些策略相关的估计误差与系统大小相关的方式降低了,即使在先前的信息受到限制的较小探索方案中,即使是经典(或无缠绕)协议的估计误差。最后,使用多项式大小张量网络算法,我们通过数值分析了集体旋转的对称子空间之外的实用变异计量学,并发现量子优势在任意轴扭曲的ansatzes中持续了几轴扭曲,几个轴的扭转曲线和较小的总扭曲角度的实际相关杂音水平较小。

Quantum metrology and sensing seek advantage in estimating an unknown parameter of some quantum state or channel, using entanglement such as spin squeezing produced by one-axis twists or other quantum resources. In particular, qubit phase estimation, or rotation sensing, appears as a ubiquitous problem with applications to electric field sensing, magnetometry, atomic clocks, and gyroscopes. By adopting the Bayesian formalism to the phase estimation problem to account for limited initial knowledge about the value of the phase, we formulate variational metrology and treat the state preparation (or encoding) and measurement (or decoding) procedures as parameterized quantum circuits. It is important to understand how effective various parametrized protocols are as well as how robust they are to the effects of complex noise such as spatially correlated noise. First, we propose a new family of parametrized encoding and decoding protocols called arbitrary-axis twist ansatzes, and show that it can lead to a substantial reduction in the number of one-axis twists needed to achieve a target estimation error. Furthermore, we demonstrate that the estimation error associated with these strategies decreases with system size in a faster manner than classical (or no-twists) protocols, even in the less-explored regimes where the prior information is limited. Last, using a polynomial-size tensor network algorithm, we numerically analyze practical variational metrology beyond the symmetric subspace of a collective spin, and find that quantum advantage persists for the arbitrary-axis twist ansatzes with a few one-axis twists and smaller total twisting angles for practically relevant noise levels.

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