论文标题

使用共轭同型检测的BB84量子键分布

The BB84 quantum key distribution using conjugate homodyne detection

论文作者

Qi, Bing

论文摘要

光学同伴检测已被广泛用于连续变化(CV)量子信息处理,以测量场正交值。在本文中,我们探讨了在“光子计数”模式下操作共轭同源检测系统以实现离散可变量(DV)量子键分布(QKD)协议的可能性。共轭同源检测系统由光束分离器,然后是两个光学同源物检测器组成,可以同时测量传入量子状态的一对共轭四倍体X和P。在经典电动力学中,X^2 + p^2与输入光的能量(光子数)成正比。在量子光学元件中,X和P不通勤,因此上述光子数测量本质上是嘈杂的。这表明标准安全性证明的盲目应用可能会导致悲观的QKD绩效。我们通过利用拟议检测方案的两个特殊特征来克服这一障碍。首先,与真空波动相关的基本检测噪声不能由外部对手操纵。其次,重建接收器末端的光子数统计信息的能力可以对对手的可能攻击产生其他约束。例如,我们使用共轭同源检测来研究BB84 QKD的安全性,并通过数值模拟评估其性能。这项研究可能会根据基于单个光子检测和基于相干检测的CV-QKD的良好DV-QKD的互补,为新的QKD方案开辟了大门。

Optical homodyne detection has been widely used in continuous-variable (CV) quantum information processing for measuring field quadrature values. In this paper we explore the possibility of operating a conjugate homodyne detection system in "photon counting" mode to implement discrete-variable (DV) quantum key distribution (QKD) protocols. A conjugate homodyne detection system, which consists of a beam splitter followed by two optical homodyne detectors, can simultaneously measure a pair of conjugate quadratures X and P of the incoming quantum state. In classical electrodynamics, X^2 + P^2 is proportional to the energy (the photon number) of the input light. In quantum optics, X and P do not commute and thus the above photon-number measurement is intrinsically noisy. This suggests that a blind application of the standard security proof could result pessimistic QKD performance. We overcome this obstacle by taking advantage of two special features of the proposed detection scheme. First, the fundamental detection noise associated with vacuum fluctuation cannot be manipulated by an external adversary. Second, the ability to reconstruct the photon number statistics at the receiver's end can place additional constraints on possible attacks from the adversary. As an example, we study the security of the BB84 QKD using conjugate homodyne detection and evaluate its performance through numerical simulations. This study may open the door to a new family of QKD protocols, in complementary to the well-established DV-QKD based on single photon detection and CV-QKD based on coherent detection.

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