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Optimized channel allocation scheme for jointly reducing four-wave mixing and Raman scattering in the DWDM-QKD system

机译:优化信道分配方案,用于共同减少DWDM-QKD系统中的四波混合和拉曼散射

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摘要

Conducting quantum key distribution (QKD) through existing optical fibers together with conventional communication signals is a viable way to expand its practical application, but weak quantum signals can be severely disrupted by co-propagating classical signals. In this paper, the suppression of four-wave mixing (FWM) noise and Raman noise is considered simultaneously for the first time, to the best of our knowledge, and the joint optimized channel allocation (JOCA) scheme is proposed. In the JOCA scheme, the quantum channels and classical channels are interleaved with each other to avoid FWM noise and optimal quantum channel positions are chosen in variable conditions according to the Raman scattering spectrum. Experimental measurements of the noise photons show that the JOCA scheme can effectively reduce the impairments on quantum signals compared with the single-target schemes. Additionally, simulation results verify that the JOCA scheme can increase the secure key generation rate and transmission distance, and that it also enables the DWDM-QKD system to tolerate higher-power classical signals and more classical channels, which improve the compatibility with a high-capacity communication system. (C) 2018 Optical Society of America
机译:通过现有的光纤传递量子密钥分布(QKD)与传统通信信号一起是扩展其实际应用的可行方式,但是通过共传播经典信号可以严重破坏弱量子信号。本文首次首次考虑了四波混合(FWM)噪声和拉曼噪声的抑制,并提出了联合优化信道分配(JOCA)方案。在JOCA方案中,量子通道和经典通道彼此交织以避免FWM噪声,并且根据拉曼散射光谱在可变条件下选择最佳量子通道位置。噪声光子的实验测量表明,与单目标方案相比,JOCA方案可以有效地降低量子信号的损伤。此外,仿真结果验证了JOCA方案是否可以提高安全的键生成速率和传输距离,并且它还使DWDM-QKD系统能够容忍更高功率的经典信号和更古典信道,这提高了与高电平的兼容性容量通信系统。 (c)2018年光学学会

著录项

  • 来源
    《Applied optics 》 |2018年第27期| 共10页
  • 作者单位

    Beijing Univ Posts &

    Telecommun State Key Lab Informat Photon &

    Opt Commun 10 Xitucheng Rd Beijing 100876 Peoples R China;

    Beijing Univ Posts &

    Telecommun State Key Lab Informat Photon &

    Opt Commun 10 Xitucheng Rd Beijing 100876 Peoples R China;

    Beijing Univ Posts &

    Telecommun State Key Lab Informat Photon &

    Opt Commun 10 Xitucheng Rd Beijing 100876 Peoples R China;

    Beijing Univ Posts &

    Telecommun State Key Lab Informat Photon &

    Opt Commun 10 Xitucheng Rd Beijing 100876 Peoples R China;

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  • 正文语种 eng
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