量子导向:以半确定规划为重点的回顾

IF 19 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Reports on Progress in Physics Pub Date : 2016-04-02 DOI:10.1088/1361-6633/80/2/024001
D. Cavalcanti, Paul Skrzypczyk
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引用次数: 345

摘要

量子转向指的是非经典相关性,可以在应用于纠缠态一半的测量结果和遗留给另一方的后测量状态之间观察到。从操作的角度来看,转向测试可以看作是纠缠测试,其中一方执行非特征测量。因此,量子转向是量子不可分性的一种形式,它位于众所周知的贝尔非定域性和纠缠之间。此外,量子转向还与一些不对称量子信息协议有关,其中一些当事方被认为是不可信的。由于这些事实,量子转向在理论上和实验上都受到了很大的关注。本综述的主要目的是概述如何通过半定规划来表征量子转向。这种特性提供了有效的数值方法来解决许多问题,包括转向检测,量化和应用。我们也给一些重要结果的简要概述半定规划没有直接关系。最后,我们提供半定的编程代码的集合,可用于研究本文中讨论的主题。
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Quantum steering: a review with focus on semidefinite programming
Quantum steering refers to the non-classical correlations that can be observed between the outcomes of measurements applied on half of an entangled state and the resulting post-measured states that are left with the other party. From an operational point of view, a steering test can be seen as an entanglement test where one of the parties performs uncharacterised measurements. Thus, quantum steering is a form of quantum inseparability that lies in between the well-known notions of Bell nonlocality and entanglement. Moreover, quantum steering is also related to several asymmetric quantum information protocols where some of the parties are considered untrusted. Because of these facts, quantum steering has received a lot of attention both theoretically and experimentally. The main goal of this review is to give an overview of how to characterise quantum steering through semidefinite programming. This characterisation provides efficient numerical methods to address a number of problems, including steering detection, quantification, and applications. We also give a brief overview of some important results that are not directly related to semidefinite programming. Finally, we make available a collection of semidefinite programming codes that can be used to study the topics discussed in this article.
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来源期刊
Reports on Progress in Physics
Reports on Progress in Physics 物理-物理:综合
CiteScore
31.90
自引率
0.00%
发文量
45
审稿时长
6-12 weeks
期刊介绍: Reports on Progress in Physics is a highly selective journal with a mission to publish ground-breaking new research and authoritative invited reviews of the highest quality and significance across all areas of physics and related areas. Articles must be essential reading for specialists, and likely to be of broader multidisciplinary interest with the expectation for long-term scientific impact and influence on the current state and/or future direction of a field.
期刊最新文献
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