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在控制和知识有限的情况下实现稳健的宏观量子测量。

Robust Macroscopic Quantum Measurements in the Presence of Limited Control and Knowledge.

作者信息

Renou Marc-Olivier, Gisin Nicolas, Fröwis Florian

机构信息

Department of Applied Physics, University of Geneva, 1211 Geneva 4, Switzerland.

出版信息

Entropy (Basel). 2018 Jan 9;20(1):39. doi: 10.3390/e20010039.

Abstract

Quantum measurements have intrinsic properties that seem incompatible with our everyday-life macroscopic measurements. Macroscopic Quantum Measurement (MQM) is a concept that aims at bridging the gap between well-understood microscopic quantum measurements and macroscopic classical measurements. In this paper, we focus on the task of the polarization direction estimation of a system of spins 1/2 particles and investigate the model some of us proposed in Barnea et al., 2017. This model is based on a von Neumann pointer measurement, where each spin component of the system is coupled to one of the three spatial component directions of a pointer. It shows traits of a classical measurement for an intermediate coupling strength. We investigate relaxations of the assumptions on the initial knowledge about the state and on the control over the MQM. We show that the model is robust with regard to these relaxations. It performs well for thermal states and a lack of knowledge about the size of the system. Furthermore, a lack of control on the MQM can be compensated by repeated "ultra-weak" measurements.

摘要

量子测量具有一些内在特性,这些特性似乎与我们日常生活中的宏观测量不相容。宏观量子测量(MQM)是一个旨在弥合人们熟知的微观量子测量与宏观经典测量之间差距的概念。在本文中,我们聚焦于自旋1/2粒子系统的极化方向估计任务,并研究我们中的一些人在2017年巴尼亚等人的论文中提出的模型。该模型基于冯·诺依曼指针测量,其中系统的每个自旋分量都与指针的三个空间分量方向之一耦合。对于中等耦合强度,它表现出经典测量的特征。我们研究了关于状态的初始知识以及对宏观量子测量的控制方面假设的放宽情况。我们表明,该模型在这些放宽情况下具有鲁棒性。它在热态以及对系统大小缺乏了解的情况下表现良好。此外,对宏观量子测量缺乏控制可以通过重复进行“超弱”测量来弥补。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/03d6/7512233/3292d4be77bc/entropy-20-00039-g001.jpg

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