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Implementation of continuous-variable quantum key distribution with composable and one-sided-device-independent security against coherent attacks

机译:实现连续可变量子密钥分发,具有可组合的和与设备无关的一侧安全性,以防止相干攻击

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Secret communication over public channels is one of the central pillars of a modern information society. Using quantum key distribution this is achieved without relying on the hardness of mathematical problems, which might be compromised by improved algorithms or by future quantum computers. State-of-the-art quantum key distribution requires composable security against coherent attacks for a finite number of distributed quantum states as well as robustness against implementation side channels. Here we present an implementation of continuous-variable quantum key distribution satisfying these requirements. Our implementation is based on the distribution of continuous-variable Einstein–Podolsky–Rosen entangled light. It is one-sided device independent, which means the security of the generated key is independent of any memoryfree attacks on the remote detector. Since continuous-variable encoding is compatible with conventional optical communication technology, our work is a step towards practical implementations of quantum key distribution with state-of-the-art security based solely on telecom components.
机译:通过公共渠道进行的秘密通信是现代信息社会的核心支柱之一。使用量子密钥分发可以在不依赖数学问题的情况下实现的,而数学问题的难度可能会因改进的算法或未来的量子计算机而受到损害。先进的量子密钥分发需要针对有限数量的分布式量子状态的针对相干攻击的可组合安全性,以及针对实现侧通道的鲁棒性。在这里,我们提出了满足这些要求的连续可变量子密钥分配的实现。我们的实现是基于连续可变的爱因斯坦-波多尔斯基-罗森纠缠光的分布。它是与设备无关的一侧,这意味着生成的密钥的安全性与远程检测器上的任何无内存攻击无关。由于连续变量编码与常规的光通信技术兼容,因此我们的工作是朝着仅基于电信组件的最新安全性实现量子密钥分配的实际迈出的一步。

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