The continuous-variable quantum key distribution with entanglement in the middle, a semi-device-independent protocol, places the source at the untrusted third party between Alice and Bob, and thus has the advantage of high levels of security with the purpose of eliminating the assumptions about the source device. However, previous works considered the collective-attack analysis, which inevitably assumes that the states of the source has an identical and independently distributed (i.i.d) structure, and limits the application of the protocol. To solve this problem, we modify the original protocol by exploiting an energy test to monitor the potential high energy attacks an adversary may use. Our analysis removes the assumptions of the light source and the modified protocol can therefore be called source-device-independent protocol. Moreover, we analyze the security of the continuous-variable source-device-independent quantum key distribution protocol with a homodyne-homodyne structure against general coherent attacks by adapting a state-independent entropic uncertainty relation. The simulation results indicate that, in the universal composable security framework, the protocol can still achieve high key rates against coherent attacks under the condition of achievable block lengths.

译文

:中间纠缠的连续变量量子密钥分布(一种与半设备无关的协议)将源放置在Alice和Bob之间的不受信任的第三方处,因此具有高安全级别的优点,从而消除了关于源设备的假设。但是,先前的工作考虑了集体攻击分析,该分析不可避免地假设源的状态具有相同且独立分布的(i.i.d)结构,并限制了协议的应用。为了解决此问题,我们通过利用能量测试来监视对手可能使用的潜在高能量攻击,来修改原始协议。我们的分析消除了光源的假设,因此修改后的协议可以称为独立于源设备的协议。此外,我们通过适应独立于状态的熵不确定性关系,分析了具有零差-homodyne结构的连续变量与源设备无关的量子密钥分发协议针对一般相干攻击的安全性。仿真结果表明,在通用的可组合安全框架下,该协议在块长度可达到的情况下,仍然可以实现较高的密钥速率来抵御相干攻击。

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