量子密钥分配
计算机科学
钥匙(锁)
光子学
实现(概率)
密钥生成
量子
量子密码学
频道(广播)
预处理器
参数统计
理论计算机科学
计算机工程
物理
算法
量子信息
密码学
计算机网络
量子力学
人工智能
数学
计算机安全
统计
作者
Melvyn Ho,Pavel Sekatski,Ernest Y.-Z. Tan,Renato Renner,Jean-Daniel Bancal,Nicolas Sangouard
标识
DOI:10.1103/physrevlett.124.230502
摘要
Device-independent quantum key distribution provides security even when the equipment used to communicate over the quantum channel is largely uncharacterized. An experimental demonstration of device-independent quantum key distribution is however challenging. A central obstacle in photonic implementations is that the global detection efficiency, i.e., the probability that the signals sent over the quantum channel are successfully received, must be above a certain threshold. We here propose a method to significantly relax this threshold, while maintaining provable device-independent security. This is achieved with a protocol that adds artificial noise, which cannot be known or controlled by an adversary, to the initial measurement data (the raw key). Focusing on a realistic photonic setup using a source based on spontaneous parametric down conversion, we give explicit bounds on the minimal required global detection efficiency.
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