Parameter optimization and real-time calibration of a measurement-device-independent quantum key distribution network based on a back propagation artificial neural network

被引:24
|
作者
Lu, Feng-Yu [1 ,2 ,3 ]
Yin, Zhen-Qiang [1 ,2 ,3 ]
Wang, Chao [1 ,3 ]
Cui, Chao-Han [1 ,3 ]
Teng, Jun [1 ,3 ]
Wang, Shuang [1 ,3 ]
Chen, Wei [1 ,3 ]
Huang, Wei [2 ]
Xu, Bing-Jie [2 ]
Guo, Guang-Can [1 ,3 ]
Han, Zheng-Fu [1 ,3 ]
机构
[1] Univ Sci & Technol China, Key Lab Quantum Informat, CAS, Hefei 230026, Anhui, Peoples R China
[2] Inst Southwestern Commun, Sci & Technol Commun Secur Lab, Chengdu 610041, Sichuan, Peoples R China
[3] State Key Lab Cryptol, POB 5159, Beijing 100878, Peoples R China
基金
中国国家自然科学基金;
关键词
31;
D O I
10.1364/JOSAB.36.000B92
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Selection of parameters (e.g., the probability of choosing an X-basis or Z-basis, the intensity of signal state and decoy state, etc.) and system calibrating are more challenging when the number of users of a measurementdevice-independent quantum key distribution (MDI-QKD) network increases. At present, optimization algorithms are usually employed when searching for the best parameters. This method can find the optimized parameters accurately, but it may take a lot of time and hardware resources. This is a big problem in a large-scale MDI-QKD network. Here, we present, to the best of our knowledge, a new method, using a back propagation artificial neural network (BPNN) to predict, rather than search, the optimized parameters. Compared to optimization algorithms, our BPNN is faster and more lightweight, and it can save system resources. Another big problem brought by large-scale MDI-QKD networks is system recalibration. BPNN can support this work in real time, and it only needs to use some discarded data generated from the communication process, rather than adding additional devices or scanning the system. (C) 2019 Optical Society of America
引用
收藏
页码:B92 / B98
页数:7
相关论文
共 50 条
  • [31] Passive Measurement-Device-Independent Quantum Key Distribution Based on Heralded Pair Coherent States
    He Yefeng
    Li Chunyu
    Guo Jiarui
    Zhao Yankun
    CHINESE JOURNAL OF LASERS-ZHONGGUO JIGUANG, 2020, 47 (09):
  • [32] Research on measurement-device-independent quantum key distribution based on an air-water channel
    周媛媛
    周学军
    徐华彬
    程康
    Optoelectronics Letters, 2016, 12 (06) : 469 - 472
  • [33] Research on measurement-device-independent quantum key distribution based on an air-water channel
    Zhou Y.-Y.
    Zhou X.-J.
    Xu H.-B.
    Cheng K.
    Optoelectronics Letters, 2016, 12 (6) : 469 - 472
  • [34] Measurement-Device-Independent Quantum Key Distribution Protocols Based on Multiple Crystal Heralded Source
    He Yefeng
    Bai Qian
    Li Lina
    Chen Sihao
    Qiang Yuwei
    ACTA OPTICA SINICA, 2021, 41 (16)
  • [35] Multi-party Measurement-Device-Independent Quantum Key Distribution Based on Cluster States
    Chuanqi Liu
    Changhua Zhu
    Shuquan Ma
    Changxing Pei
    International Journal of Theoretical Physics, 2018, 57 : 726 - 739
  • [36] Polarization-based plug-and-play measurement-device-independent quantum key distribution
    Hu, Min
    Zhang, Litao
    Guo, Banghong
    Li, Jun
    OPTICAL AND QUANTUM ELECTRONICS, 2019, 51 (01)
  • [37] Fault Location of Distribution Network Based on Back Propagation Neural Network Optimization Algorithm
    Zhou, Chuan
    Gui, Suying
    Liu, Yan
    Ma, Junpeng
    Wang, Hao
    PROCESSES, 2023, 11 (07)
  • [38] Polarization-based plug-and-play measurement-device-independent quantum key distribution
    Min Hu
    Litao Zhang
    Banghong Guo
    Jun Li
    Optical and Quantum Electronics, 2019, 51
  • [39] Continuous-Variable Measurement-Device-Independent Quantum Key Distribution with One-Time Shot-Noise Unit Calibration
    黄露雨
    张一辰
    喻松
    Chinese Physics Letters, 2021, 38 (04) : 6 - 11
  • [40] Measurement-device-independent quantum key distribution with passive time-dependent source side channels
    Bourassa, J. Eli
    Gnanapandithan, Amita
    Qian, Li
    Lo, Hoi-Kwong
    PHYSICAL REVIEW A, 2022, 106 (06)