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General immunity and superadditivity of two-way Gaussian quantum cryptography

机译:双向高斯量子密码学的一般免疫力和超加性

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摘要

We consider two-way continuous-variable quantum key distribution, studying its security against general eavesdropping strategies. Assuming the asymptotic limit of many signals exchanged, we prove that two-way Gaussian protocols are immune to coherent attacks. More precisely we show the general superadditivity of the two-way security thresholds, which are proven to be higher than the corresponding one-way counterparts in all cases. We perform the security analysis first reducing the general eavesdropping to a two-mode coherent Gaussian attack, and then showing that the superadditivity is achieved by exploiting the random on/off switching of the two-way quantum communication. This allows the parties to choose the appropriate communication instances to prepare the key, accordingly to the tomography of the quantum channel. The random opening and closing of the circuit represents, in fact, an additional degree of freedom allowing the parties to convert, a posteriori, the two-mode correlations of the eavesdropping into noise. The eavesdropper is assumed to have no access to the on/off switching and, indeed, cannot adapt her attack. We explicitly prove that this mechanism enhances the security performance, no matter if the eavesdropper performs collective or coherent attacks.
机译:我们考虑双向连续可变量子密钥分发,研究其针对一般窃听策略的安全性。假设交换的许多信号的渐近极限,我们证明双向高斯协议不受相干攻击的影响。更准确地说,我们显示了双向安全性阈值的一般超可加性,事实证明,在所有情况下,该阈值都比相应的单向安全性阈值高。我们先进行安全性分析,然后将一般的窃听减少到两模式相干高斯攻击,然后证明通过利用双向量子通信的随机开/关切换可以实现超可加性。这允许各方根据量子通道的层析成像选择适当的通信实例来准备密钥。实际上,电路的随机断开和闭合代表了附加的自由度,允许各方将后验的窃听的两种模式相关性转换为噪声。假定窃听者无法进行开/关切换,并且实际上无法适应她的攻击。我们明确证明,无论窃听者执行集体攻击还是相干攻击,此机制都可以提高安全性能。

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