基于通过弱测量和环境辅助测量抑制退相干的量子通信

IF 1.3 4区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY International Journal of Theoretical Physics Pub Date : 2024-07-04 DOI:10.1007/s10773-024-05702-y
Ai-li Song, Jiayin Peng, Nueraminaimu Maihemuti, Yimamujiang Aisan, Jiangang Tang
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引用次数: 0

摘要

本文基于任意单量子比特态的远程状态准备(RSP)方案和受控量子远传协议,讨论了弱测量(WM)和环境辅助测量(EAM)的退相干抑制(DS)。我们从振幅或相位阻尼信道的角度分析了弱测量和环境辅助测量的退相干抑制策略在提高量子通信效率和质量方面的应用。对于这两种噪声,我们计算了该方案的平均保真度和成功概率,并将其作为弱测量前后和信道衰减参数的函数。只要完全知道振幅或相位阻尼的衰减率,即使在重阻尼情况下,也总能达到单位保真度,这就是所提方案的最大优势。讨论了几个参数对基于退相干抑制的 RSP 的影响,包括弱测量强度和退相干通道的衰减率。结果表明,任意未知单量子比特态的受保护 CQT 都能以一定的概率和 100% 的保真度实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Quantum Communication Based on Decoherence Suppression Via Weak Measurement and Environment-Assisted Measurement

In this paper, based on a remote state preparation (RSP) scheme for arbitrary single quantum bit state and a controlled quantum teleportation protocol, we discuss the decoherence suppression (DS) of weak measurement (WM) and environmentally assisted measurement (EAM). We analyze the application of the decoherence suppression strategy of WM and EAM in improving the efficiency and quality of quantum communication from the perspective of amplitude or phase damped channels. For these two types of noise, the average fidelity and the probability of success of the scheme are calculated as a function of the weak measurement before, after and the channel attenuation parameters. Provided that the decay rate of the amplitude or phase damping is completely known, one can always achieve unit fidelity even for heavy damping cases, which is the biggest advantage of proposed scheme. Influences of several paramters, including strengths of weak measurements and the decay rate of the decoherence channel, on the RSP based on decoherence suppression is discussed. The results indicate that protected CQT of an arbitrary unknown single-qubit state can be achieved with a certain probability and 100% fidelity.

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来源期刊
CiteScore
2.50
自引率
21.40%
发文量
258
审稿时长
3.3 months
期刊介绍: International Journal of Theoretical Physics publishes original research and reviews in theoretical physics and neighboring fields. Dedicated to the unification of the latest physics research, this journal seeks to map the direction of future research by original work in traditional physics like general relativity, quantum theory with relativistic quantum field theory,as used in particle physics, and by fresh inquiry into quantum measurement theory, and other similarly fundamental areas, e.g. quantum geometry and quantum logic, etc.
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