融合量子与经典加密,提升远距离通信安全与效率
Practical hybrid PQC-QKD protocols with enhanced security and performance
- 设计量子-经典协同的混合密钥分发协议
- 结合QKD与PQC优势,兼顾安全性与计算性能
- 适用于对安全性和速度有不同需求的实际网络
随着量子技术向大规模容错量子计算机发展,抗量子威胁的密码系统日益重要。量子密钥分发(QKD)利用光子量子态提供信息论安全性,但长距离传输受损耗限制;后量子密码(PQC)基于经典计算,虽被推测具备抗量子攻击能力,却尚未严格证明,且当前实现计算开销大。为此,本文提出混合协议,使QKD与PQC在联合量子-经典网络中协同工作。我们研究了多种混合架构,可同时提升速度和安全性。此外,提出一种分析混合协议在密钥分发网络中安全性的方法。该混合方案为融合量子与经典通信网络提供了路径,可按实际网络需求灵活配置。
原文摘要 · Abstract (English)
Quantum resistance is vital for emerging cryptographic systems as quantum technologies continue to advance towards large-scale, fault-tolerant quantum computers. Resistance may be offered by quantum key distribution (QKD), which provides information-theoretic security using quantum states of photons, but may be limited by transmission loss at long distances. An alternative approach uses classical means and is conjectured to be resistant to quantum attacks, so-called post-quantum cryptography (PQC), but it is yet to be rigorously proven, and its current implementations are computationally expensive. To overcome the security and performance challenges present in each, here we develop hybrid protocols by which QKD and PQC inter-operate within a joint quantum-classical network. In particular, we consider different hybrid designs that may offer enhanced speed and/or security over the individual performance of either approach. Furthermore, we present a method for analyzing the security of hybrid protocols in key distribution networks. Our hybrid approach paves the way for joint quantum-classical communication networks, which leverage the advantages of both QKD and PQC and can be tailored to the requirements of various practical networks.
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