论文标题

敏捷和多功能量子通信:签名和秘密

Agile and versatile quantum communication: signatures and secrets

论文作者

Richter, Stefan, Thornton, Matthew, Khan, Imran, Scott, Hannah, Jaksch, Kevin, Vogl, Ulrich, Stiller, Birgit, Leuchs, Gerd, Marquardt, Christoph, Korolkova, Natalia

论文摘要

敏捷密码学允许加密核心的资源有效互换,以防潜在的经典加密算法的安全性受到损害。相反,多功能密码学允许用户切换加密任务,而无需了解其内部工作。在本文中,我们建议如何通过在同一硬件发送者和接收机平台上明确说明两个量子加密协议,量子数字签名(QD)和量子秘密共享(QSS),将这些相关原理应用于量子加密字段。至关重要的是,协议仅在其经典后处理方面有所不同。该系统也适用于量子键分布(QKD),并且与部署的电信基础架构高度兼容,因为它使用了标准的正交相位移位键(QPSK)编码和异差检测。首次修改QDS协议以允许在接收方进行后选择,从而增强协议性能。加密原语QD和QSS本质上是多方的,我们证明它们不仅是在任务内部的播放器不诚实时,而且(外部)窃听量子通道时的安全性。在我们的首次原则证明敏捷和多功能量子通信系统中,量子状态以GHz速率分布。这允许在2 km光纤链路上使用我们的QDS协议在不到0.05毫秒的情况下牢固地签署一条消息,并且在20 km光纤链路上不到0.2〜S。据我们所知,这也标志着连续变量直接QSS协议的首次演示。

Agile cryptography allows for a resource-efficient swap of a cryptographic core in case the security of an underlying classical cryptographic algorithm becomes compromised. Conversely, versatile cryptography allows the user to switch the cryptographic task without requiring any knowledge of its inner workings. In this paper, we suggest how these related principles can be applied to the field of quantum cryptography by explicitly demonstrating two quantum cryptographic protocols, quantum digital signatures (QDS) and quantum secret sharing (QSS), on the same hardware sender and receiver platform. Crucially, the protocols differ only in their classical post-processing. The system is also suitable for quantum key distribution (QKD) and is highly compatible with deployed telecommunication infrastructures, since it uses standard quadrature phase shift keying (QPSK) encoding and heterodyne detection. For the first time, QDS protocols are modified to allow for postselection at the receiver, enhancing protocol performance. The cryptographic primitives QDS and QSS are inherently multipartite and we prove that they are secure not only when a player internal to the task is dishonest, but also when (external) eavesdropping on the quantum channel is allowed. In our first proof-of-principle demonstration of an agile and versatile quantum communication system, the quantum states were distributed at GHz rates. This allows for a one-bit message to be securely signed using our QDS protocols in less than 0.05 ms over a 2 km fiber link and in less than 0.2~s over a 20 km fiber link. To our knowledge, this also marks the first demonstration of a continuous-variable direct QSS protocol.

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