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Key distillation in quantum cryptography.

机译:量子密码学中的密钥蒸馏。

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Quantum cryptography is a technique which permits two parties to communicate over an open channel and establish a shared sequence of bits known only to themselves. This task, provably impossible in classical cryptography, is accomplished by encoding the data on quantum particles and harnessing their unique properties. It is believed that no eavesdropping attack consistent with the laws of quantum theory can compromise the secret data unknowingly to the legitimate users of the channel. Any attempt by a hostile actor to monitor the data carrying particles while in transit reveals itself through transmission errors it must inevitably introduce. Unfortunately, in practice a communication is not free of errors even when no eavesdropping is present. Key distillation is a technique that permits the parties to overcome this difficulty and establish a secret key despite channel defects, under the assumption that every particle is handled independently from other particles by the enemy. In the present work, key distillation is described and its various aspects are studied. A relationship is derived between the average error rate resulting from an eavesdropping attack and the amount of information obtained by the attacker. Formal definition is developed of the security of the final key. The net throughput of secret bits in a quantum cryptosystem employing key distillation is assessed. An overview of quantum cryptographic protocols and related information theoretical results is also given.
机译:量子密码术是一种允许双方在开放信道上进行通信并建立仅对自己已知的位的共享序列的技术。通过在量子粒子上编码数据并利用其独特的特性来完成这项任务,这在经典密码学中是不可能实现的。人们认为,没有任何符合量子理论定律的窃听攻击会在不知情的情况下将秘密数据泄露给该频道的合法用户。敌对行动者在传输过程中监视数据携带的粒子的任何尝试都会不可避免地通过传输错误来表明自身。不幸的是,实际上,即使不存在窃听,通信也不是没有错误。密钥蒸馏是一种技术,它允许各方克服此困难并在遇到通道缺陷的情况下建立秘密密钥,前提是假定每个粒子都被敌人独立于其他粒子进行处理。在本工作中,描述了关键蒸馏并研究了其各个方面。窃听攻击导致的平均错误率与攻击者获得的信息量之间存在关系。正式定义了最终密钥的安全性。评估采用密钥蒸馏的量子密码系统中秘密比特的净吞吐量。还概述了量子密码协议和相关信息的理论结果。

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