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Fault-tolerant high-capacity quantum key distribution over a collective-noise channel using extended unitary operations

机译:使用扩展的operations运算在集体噪声通道上容错的高容量量子密钥分配

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摘要

We propose two fault-tolerant high-capacity quantum key distribution schemes, in which an entangled pair over a collective-noise channel consisting of one logical qubit and one physical qubit can carry four bits of key information. The basic idea is to use 2-extended unitary operations from collective noises together with quantum dense coding. The key messages are encoded on logical qubits of two physical qubits with sixteen 2-extended unitary operations based on collective noises. The key can be recovered using Bell-state analysis on the logical qubit and a single-photon measurement on the physical qubit rather than three-qubit GHZ joint measurements. The proposed protocols require a collation table to be shared between Alice and Bob in advance. Consequently, the key messages carried by an entangled state, in our protocol, have doubled at the price of sharing the collation table between Alice and Bob. However, the efficiency of qubits is enhanced because a quantum bit ismore expensive to prepare than a classical bit.
机译:我们提出了两种容错的高容量量子密钥分配方案,其中在由一个逻辑量子位和一个物理量子位组成的集体噪声通道上的一对纠缠对可以携带四位密钥信息。基本思想是使用来自集体噪声的2扩展unit运算以及量子密集编码。关键消息被编码为两个物理量子位的逻辑量子位,并基于集体噪声进行了16次2扩展的ary运算。可以使用逻辑量子位上的Bell状态分析和物理量子位上的单光子测量(而不是三量子位GHZ联合测量)来恢复密钥。提议的协议要求事先在Alice和Bob之间共享一个整理表。因此,在我们的协议中,纠缠状态所携带的关键消息以在Alice和Bob之间共享排序表的代价增加了一倍。但是,量子位的效率得到了提高,因为量子位的制备比经典位更昂贵。

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