Controlled Double-Direction Cyclic Quantum Communication of Arbitrary Two-Particle States.

IF 2.1 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Entropy Pub Date : 2025-03-11 DOI:10.3390/e27030292
Nueraminaimu Maihemuti, Zhanheng Chen, Jiayin Peng, Yimamujiang Aisan, Jiangang Tang
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Abstract

With the rapid development of quantum communication technologies, controlled double-direction cyclic (CDDC) quantum communication has become an important research direction. However, how to choose an appropriate quantum state as a channel to achieve double-direction cyclic (DDC) quantum communication for multi-particle entangled states remains an unresolved challenge. This study aims to address this issue by constructing a suitable quantum channel and investigating the DDC quantum communication of two-particle states. Initially, we create a 25-particle entangled state using Hadamard and controlled-NOT (CNOT) gates, and provide its corresponding quantum circuit implementation. Based on this entangled state as a quantum channel, we propose two new four-party CDDC schemes, applied to quantum teleportation (QT) and remote state preparation (RSP), respectively. In both schemes, each communicating party can synchronously transmit two different arbitrary two-particle states to the other parties under supervisory control, achieving controlled quantum cyclic communication in both clockwise and counterclockwise directions. Additionally, the presented two schemes of four-party CDDC quantum communication are extended to situations where n>3 communicating parties. In each proposed scheme, we provide universal analytical formulas for the local operations of the sender, supervisor, and receiver, demonstrating that the success probability of each scheme can reach 100%. These schemes only require specific two-particle projective measurements, single-particle von Neumann measurements, and Pauli gate operations, all of which can be implemented with current technologies. We have also evaluated the inherent efficiency, security, and control capabilities of the proposed schemes. In comparison to earlier methods, the results demonstrate that our schemes perform exceptionally well. This study provides a theoretical foundation for bidirectional controlled quantum communication of multi-particle states, aiming to enhance security and capacity while meeting the diverse needs of future network scenarios.

随着量子通信技术的飞速发展,受控双向循环(CDDC)量子通信已成为一个重要的研究方向。然而,如何选择合适的量子态作为信道来实现多粒子纠缠态的双向循环量子通信仍是一个尚未解决的难题。本研究旨在通过构建合适的量子信道和研究双粒子态的 DDC 量子通信来解决这一问题。首先,我们利用哈达玛门和受控-NOT(CNOT)门创建了一个 25 粒子纠缠态,并提供了相应的量子电路实现。基于这个纠缠态作为量子信道,我们提出了两个新的四方 CDDC 方案,分别应用于量子远传(QT)和远程状态准备(RSP)。在这两种方案中,每个通信方都可以在监督控制下向其他各方同步传输两种不同的任意双粒子态,实现顺时针和逆时针方向的可控量子循环通信。此外,所提出的两种四方 CDDC 量子通信方案还扩展到了 n>3 个通信方的情况。在提出的每种方案中,我们都提供了发送方、监督方和接收方本地操作的通用分析公式,证明每种方案的成功概率都能达到 100%。这些方案只需要特定的双粒子投影测量、单粒子冯-诺依曼测量和保利门操作,所有这些都可以通过现有技术实现。我们还评估了所提方案的内在效率、安全性和控制能力。与早期的方法相比,结果表明我们的方案表现优异。这项研究为多粒子状态的双向受控量子通信提供了理论基础,旨在提高安全性和容量,同时满足未来网络场景的多样化需求。
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来源期刊
Entropy
Entropy PHYSICS, MULTIDISCIPLINARY-
CiteScore
4.90
自引率
11.10%
发文量
1580
审稿时长
21.05 days
期刊介绍: Entropy (ISSN 1099-4300), an international and interdisciplinary journal of entropy and information studies, publishes reviews, regular research papers and short notes. Our aim is to encourage scientists to publish as much as possible their theoretical and experimental details. There is no restriction on the length of the papers. If there are computation and the experiment, the details must be provided so that the results can be reproduced.
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