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作 者:李熙涵[1,2]
机构地区:[1]重庆大学物理学院,重庆401331 [2]Department of Physics and Computer Science, Wilfrid Laurier University
出 处:《物理学报》2015年第16期39-55,共17页Acta Physica Sinica
基 金:国家自然科学基金(批准号:11004258);中央高校基本科研业务费(批准号:CQDXWL-2012-014)资助的课题~~
摘 要:量子直接通信是量子通信中的一个重要分支,它是一种不需要事先建立密钥而直接传输机密信息的新型通信模式.本综述将介绍量子直接通信的基本原理,回顾量子直接通信的发展历程,从最早的高效量子直接通信协议、两步量子直接通信模型、量子一次一密直接通信模型等,到抗噪声的量子直接通信模型以及基于单光子多自由度量子态及超纠缠态的量子直接通信模型,最后介绍量子直接通信的研究现状并展望其发展未来.Quantum secure direct communication (QSDC) is one of the most important branches of quantum communication. In contrast to the quantum key distribution (QKD) which distributes a secure key between distant parties, QSDC directly transmits secret message instead of sharing key in advance. To establish a secure QSDC protocol, on the one hand, the security of the quantum channel should be confirmed before the exchange of the secret message. On the other hand, the quantum state should be transmitted in a quantum data block since the security of QSDC is based on the error rate analysis in the theories on statistics. Compared with the deterministic quantum key distribution (DQKD) which can also be used to transmit deterministic information, QSDC schemes do not need extra classical bits to read the secret message except for public discussion. In this article, we introduce the basic principles of QSDC and review the development in this field by introducing typical QSDC protocols chronologically. The first QSDC protocol was proposed by Long and Liu, which can be used to establish a common key between distant parties. In their scheme, the method for transmitting quantum states in a block by block way and in multiple steps was proposed and the information leakage before eavesdropping detection was solved. Subsequently, Deng et al. presented two pioneering QSDC schemes, an entangled-state-based two-step QSDC scheme and a single-photon-state-based quantum one-time pad scheme, in which the basic principle and criteria for QSDC were pointed out. From then on, many interesting QSDC schemes have been proposed, including the high-dimension QSDC scheme based on quantum superdense coding, multi-step QSDC scheme based on Greenberger-Horne-Zeilinger states, QSDC scheme based on quantum encryption with practical non-maximally entangled quantum channel, and so on. We also introduce the anti-noise QSDC schemes which were designed for coping with the collective-dephasing noise and the collective-rotation noise, respectively. In
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