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Implementing the decoy state protocol in a practically oriented Quantum Key Distribution system-level model

机译:在面向实用的量子密钥分配系统级模型中实施诱骗状态协议

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摘要

Quantum Key Distribution (QKD) is an emerging cybersecurity technology that exploits the laws of quantum mechanics to generate unconditionally secure symmetric cryptographic keying material. The unique nature of QKD shows promise for high-security environments such as those found in banking, government, and the military. However, QKD systems often have implementation non-idealities that can negatively impact their performance and security. This article describes the development of a system-level model designed to study implementation non-idealities in commercially available decoy state enabled QKD systems. Specifically, this paper provides a detailed discussion of the decoy state protocol, its implementation, and its usage to detect sophisticated attacks, such as the photon number splitting attack. In addition, this work suggests an efficient and repeatable systems engineering methodology for understanding and studying communications protocols, architectures, operational configurations, and implementation tradeoffs in complex cyber systems.
机译:量子密钥分发(QKD)是一种新兴的网络安全技术,它利用量子力学定律来生成无条件安全的对称加密密钥材料。 QKD的独特性质显示出对诸如银行,政府和军方等高安全性环境的希望。但是,QKD系统通常具有非理想的实现方式,会对它们的性能和安全性产生负面影响。本文介绍了系统级模型的开发,该模型旨在研究商用诱饵状态启用的QKD系统中的实现非理想性。具体来说,本文详细讨论了诱骗状态协议,其实现及其在检测复杂攻击(例如光子数分裂攻击)中的用途。此外,这项工作提出了一种有效且可重复的系统工程方法,用于理解和研究复杂网络系统中的通信协议,体系结构,操作配置和实现折衷方案。

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