Sun Shi-Hai, Tian Zhi-Yu, Zhao Mei-Sheng, Ma Yan
School of Physics and Astronomy, Sun Yat-Sen University, Zhuhai, 519082, Guangdong, People's Republic of China.
QuantumCTek Co. Ltd., Hefei, 230000, Anhui, People's Republic of China.
Sci Rep. 2020 Oct 23;10(1):18145. doi: 10.1038/s41598-020-75159-6.
Quantum key distribution (QKD) can share an unconditional secure key between two remote parties, but the deviation between theory and practice will break the security of the generated key. In this paper, we evaluate the security of QKD with weak basis-choice flaws, in which the random bits used by Alice and Bob are weakly controlled by Eve. Based on the definition of Li et al. (Sci Rep 5:16200, 2015) and GLLP's analysis, we obtain a tight and analytical bound to estimate the phase error and key rate for both the single photon source and the weak coherent source. Our approach largely increases the key rate from that of the original approach. Finally, we investigate and confirm the security of BB84-QKD with a practical commercial devices.
量子密钥分发(QKD)能够在两个远程方之间共享无条件安全的密钥,但理论与实践之间的偏差会破坏所生成密钥的安全性。在本文中,我们评估了存在弱基选择缺陷的QKD的安全性,其中爱丽丝(Alice)和鲍勃(Bob)使用的随机比特受到伊芙(Eve)的微弱控制。基于李等人(《科学报告》5:16200,2015年)的定义以及GLLP的分析,我们得到了一个精确的解析界限,用于估计单光子源和弱相干源的相位误差和密钥率。我们的方法相比原始方法大幅提高了密钥率。最后,我们使用实际的商业设备研究并确认了BB84-QKD的安全性。