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首页> 外文期刊>Journal of VLSI signal processing systems for signal, image, and video technology >An FPGA-Based 4 Mbps Secret Key Distillation Engine for Quantum Key Distribution Systems
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An FPGA-Based 4 Mbps Secret Key Distillation Engine for Quantum Key Distribution Systems

机译:基于FPGA的4 Mbps密钥蒸馏引擎,用于量子密钥分配系统

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Quantum key distribution (QKD) enables provably secure communication between two parties over an optical fiber that arguably withstands any form of attack. Besides the need for a suitable physical signalling scheme and the corresponding devices, QKD also requires a secret key distillation protocol. This protocol and the involved signal processing handle the reliable key agreement process over the fragile quantum channel, as well as the necessary post-processing of key bits to avoid leakage of secret key information to an eavesdropper. In this paper we present in detail an implementation of a key distillation engine for a QKD system based on the coherent one-way (COW) protocol. The processing of key bits by the key distillation engine includes agreement on quantum bit detections (sifting), information reconciliation with forward error correction coding, parameter estimation, and privacy amplification over an authenticated channel. We detail the system architecture combining all these processing steps, and discuss the design trade-offs for each individual system module. We also assess the performance and efficiency of our key distillation implementation in terms of throughput, error correction capabilities, and resource utilization. On a single-FPGA ( Xilinx Virtex-6 LX240T) platform, the system supports distilled key rates of up to 4 Mbps.
机译:量子密钥分发(QKD)可以通过光纤有效地证明两方之间的通信安全,可以抵御任何形式的攻击。除了需要合适的物理信令方案和相应的设备外,QKD还需要密钥蒸馏协议。该协议和所涉及的信号处理过程在脆弱的量子通道上进行可靠的密钥协商过程,并对密钥位进行必要的后处理,以避免秘密密钥信息泄露给窃听者。在本文中,我们详细介绍了基于相干单向(COW)协议的QKD系统关键蒸馏引擎的实现。密钥蒸馏引擎对密钥位的处理包括有关量子位检测(筛选),使用前向纠错编码进行信息协调,参数估计以及在经过身份验证的通道上进行隐私放大的协议。我们将结合所有这些处理步骤来详细说明系统架构,并讨论每个系统模块的设计权衡。我们还根据吞吐量,纠错能力和资源利用率评估关键蒸馏实施的性能和效率。在单FPGA(Xilinx Virtex-6 LX240T)平台上,系统支持高达4 Mbps的提炼密钥速率。

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