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System-level considerations for modeling space-based quantum key distribution architectures

机译:用于建模基于空间量子密钥分配架构的系统级考虑因素

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Quantum Key Distribution (QKD) is a revolutionary technology which leverages the laws of quantum mechanics to distribute cryptographic keying material between two parties with theoretically unconditional security. Terrestrial QKD systems are limited to distances of <;200 km in both optical fiber and line-of-sight free-space configurations due to severe losses during single photon propagation and the curvature of the Earth. Thus, the feasibility of fielding a low Earth orbit (LEO) QKD satellite to overcome this limitation is being explored. Moreover, in August 2016, the Chinese Academy of Sciences successfully launched the world's first QKD satellite. However, many of the practical engineering performance and security tradeoffs associated with space-based QKD are not well understood for global secure key distribution. This paper presents several system-level considerations for modeling and studying space-based QKD architectures and systems. More specifically, this paper explores the behaviors and requirements that researchers must examine to develop a model for studying the effectiveness of QKD between LEO satellites and ground stations.
机译:量子密钥分布(QKD)是一种革命性的技术,利用量子力学的定律,在理论上无条件的安全性,在两方之间分配了加密键控材料。陆地QKD系统仅限于光纤和视线200公里的距离,由于单光子传播和地球的曲率造成严重损失,因此由于严重损失。因此,正在探讨展开低地球轨道轨道(LEO)QKD卫星以克服这种限制的可行性。此外,2016年8月,中国科学院成功推出了世界上第一个QKD卫星。然而,对于全球安全密钥分配,许多与基于空间的QKD相关的实际工程性能和安全权衡并不充分了解。本文介绍了用于建模和研究基于空间的QKD架构和系统的几个系统级考虑因素。更具体地说,本文探讨了研究人员必须检查的行为和要求,以开发研究Leo卫星和地站之间QKD的有效性的模型。

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