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Decoherence can help quantum cryptographic security

机译:转移可以帮助量子加密安全

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In quantum key distribution, one conservatively assumes that the eavesdropper Eve is restricted only by physical laws, whereas the legitimate parties, namely the sender Alice and receiver Bob, are subject to realistic constraints, such as noise due to environment-induced decoherence. In practice, Eve too may be bound by the limits imposed by noise, which can give rise to the possibility that decoherence works to the advantage of the legitimate parties. A particular scenario of this type is one where Eve can't replace the noisy communication channel with an ideal one, but her eavesdropping channel itself remains noiseless. Here, we point out such a situation, where the security of the ping-pong protocol (modified to a key distribution scheme) against a noise-restricted adversary improves under a non-unital noisy channel, but deteriorates under unital channels. This highlights the surprising fact that, contrary to the conventional expectation, noise can be helpful to quantum information processing. Furthermore, we point out that the measurement outcome data in the context of the non-unital channel can't be simulated by classical noise locally added by the legitimate users.
机译:在量子密钥分布中,一个保守地假设窃听者Eve仅受到物理规律的限制,而合法方则即发件人Alice和接收器鲍勃受到现实的限制,例如由于环境引起的阻断导致的噪声。在实践中,夏日也可能受到噪声施加的限制的束缚,这可能导致阻断力适用于合法方的优势。这种类型的特定场景是eve无法用理想的eve替换噪声通信信道的特定场景,但是她的窃听信道本身仍然无知。在这里,我们指出了这种情况,其中Ping-Pong协议(修改为关键分配方案)对非起伏限制的对手的安全性在非起伏嘈杂的通道下改善,但在非动力通道下恶化。这突出了令人惊讶的事实,这与传统的期望相反,噪声可以有助于量子信息处理。此外,我们指出,通过由合法用户局部添加的经典噪声,无法模拟非起始通道的上下文中的测量结果数据。

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