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Monitoring and physical-layer attack mitigation in SDN-controlled quantum key distribution networks

机译:SDN控制的量子密钥分发网络中的监视和物理层攻击缓解

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Quantum key distribution (QKD) has been identified as a secure method for providing symmetric keys between two parties based on the fundamental laws of quantum physics, making it impossible for a third party to copy the quantum states exchanged without being detected by the sender (Alice) and receiver (Bob) and without altering the original states. However, when QKD is applied in a deployed optical network, physical-layer intrusions may occur in the optical links by injecting harmful signals directly into the optical fiber. This can have a detrimental effect on the key distribution and eventually lead to its disruption. On the other hand, network architectures with software-defined networking (SDN) benefit from a homogeneous and unified control plane that can seamlessly control a QKD-enabled optical network end-to-end. There is no need for a separate QKD control, a separate control for each segment of an optical network, and an orchestrator to coordinate between these parts. Furthermore, SDN allows customized and application -tailored control and algorithm provisioning, such as QKD-aware optical path computation, to be deployed in the network, independent of the underlying infrastructure. Therefore, in this paper, we investigate the integration of the application, SDN, and QKD infrastructure layers and confirm capability for flexible supervision and uninterrupted key service provisioning in the event of link level attacks. An experimental demonstrator is used, for the first time, to verify the architecture proposed, considering real-time monitoring of quantum parameters and fiberoptic link intruders to emulate real-world conditions. Furthermore, attacks on a standard single-mode fiber (via a 3 dB coupler) and a multicore fiber (via an adjacent core) arc undertaken to explore different connectivity between QKD units. Results show additional attacker identification and switching time of less than 60 ms for the link cases investigated, being negligible compared to the total (re-)initialization time of 14 min of the QKD units.
机译:量子密钥分配(QKD)已被确定为一种基于量子物理学基本定律在两方之间提供对称密钥的安全方法,这使得第三方无法复制交换的量子状态而不会被发送方检测到(爱丽丝)和接收器(鲍勃),并且不会更改原始状态。但是,当将QKD应用到已部署的光网络中时,通过将有害信号直接注入光纤,可能会在光链路中发生物理层入侵。这可能对密钥分配产生不利影响,并最终导致密钥破坏。另一方面,具有软件定义网络(SDN)的网络体系结构得益于同类且统一的控制平面,该平面可以端到端无缝地控制启用QKD的光网络。不需要单独的QKD控件,对光网络每个部分的单独控件以及协调器来协调这些部分。此外,SDN允许独立于底层基础结构,在网络中部署自定义和针对应用程序量身定制的控制和算法配置,例如QKD感知光路径计算。因此,在本文中,我们研究了应用程序,SDN和QKD基础结构层的集成,并确定了在发生链路级攻击时灵活监控和不中断关键服务供应的功能。考虑到对量子参数和光纤链路入侵者的实时监控以模拟现实条件,首次使用实验演示器来验证所提出的体系结构。此外,对标准的单模光纤(通过3 dB耦合器)和多芯光纤(通过相邻的芯)进行了攻击,以探索QKD单元之间的不同连接性。结果显示,对于所调查的链接案例,攻击者识别和切换时间少于60 ms,与QKD单元的总(重新)初始化时间14分钟相比,可以忽略不计。

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    Univ Bristol, Sch Comp Sci Elect & Elect Engn & Engn Maths SCEE, High Performance Networks Grp HPN, Smart Internet Lab, Bristol, Avon, England;

    Univ Bristol, Sch Comp Sci Elect & Elect Engn & Engn Maths SCEE, High Performance Networks Grp HPN, Smart Internet Lab, Bristol, Avon, England;

    Univ Bristol, Sch Comp Sci Elect & Elect Engn & Engn Maths SCEE, High Performance Networks Grp HPN, Smart Internet Lab, Bristol, Avon, England;

    Univ Bristol, Sch Comp Sci Elect & Elect Engn & Engn Maths SCEE, High Performance Networks Grp HPN, Smart Internet Lab, Bristol, Avon, England;

    Univ Bristol, Sch Comp Sci Elect & Elect Engn & Engn Maths SCEE, High Performance Networks Grp HPN, Smart Internet Lab, Bristol, Avon, England;

    Univ Bristol, Sch Comp Sci Elect & Elect Engn & Engn Maths SCEE, High Performance Networks Grp HPN, Smart Internet Lab, Bristol, Avon, England;

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  • 正文语种 eng
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  • 关键词

    Link failure mitigation; Multicore fiber; Quantum key distribution; Software-defined networking;

    机译:减轻链路故障;多芯光纤;密钥分配;软件定义的网络;

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