论文标题

随机测量工具箱

The randomized measurement toolbox

论文作者

Elben, Andreas, Flammia, Steven T., Huang, Hsin-Yuan, Kueng, Richard, Preskill, John, Vermersch, Benoît, Zoller, Peter

论文摘要

越来越复杂的可编程量子模拟器和量子计算机正在为探索和利用高度纠缠的复杂量子系统的属性打开前所未有的机会。大量子系统的复杂性是其力量的来源,但也使它们难以精确控制或使用测量的经典数据准确地表征。我们审查了最近开发的协议,用于使用当今使用当今量子平台实用的测量方案来探测复杂多数系统的属性。在所有这些方案中,量子状态是反复制备和以随机选择的;然后,经典的计算机处理测量结果以估计所需的属性。测量程序的随机化具有不同的优势。例如,可以多次使用单个数据集来追求各种应用程序,并且测量中的缺陷映射到简化的噪声模型,可以更容易地减轻。我们讨论已经在量子设备中已经实现的一系列用例,包括哈密顿模拟任务,量子混乱的探针,非局部订单参数的测量以及在远距离实验室中产生的量子状态的比较。通过提供一种可行的方法,将复杂的量子状态转化为简洁的经典表示,以保留各种相关的物理特性,随机测量工具箱可以增强我们掌握和控制量子世界的能力。

Increasingly sophisticated programmable quantum simulators and quantum computers are opening unprecedented opportunities for exploring and exploiting the properties of highly entangled complex quantum systems. The complexity of large quantum systems is the source of their power, but also makes them difficult to control precisely or characterize accurately using measured classical data. We review recently developed protocols for probing the properties of complex many-qubit systems using measurement schemes that are practical using today's quantum platforms. In all these protocols, a quantum state is repeatedly prepared and measured in a randomly chosen basis; then a classical computer processes the measurement outcomes to estimate the desired property. The randomization of the measurement procedure has distinct advantages; for example, a single data set can be employed multiple times to pursue a variety of applications, and imperfections in the measurements are mapped to a simplified noise model that can more easily be mitigated. We discuss a range of use cases that have already been realized in quantum devices, including Hamiltonian simulation tasks, probes of quantum chaos, measurements of nonlocal order parameters, and comparison of quantum states produced in distantly separated laboratories. By providing a workable method for translating a complex quantum state into a succinct classical representation that preserves a rich variety of relevant physical properties, the randomized measurement toolbox strengthens our ability to grasp and control the quantum world.

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