Analysis and design of parallel concatenated channel codes for Quantum Key Distribution (QKD) applications

F. Vatta, R. Romano, F. Mesiti
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引用次数: 2

Abstract

Objective of this paper is the study of Quantum Key Distribution (QKD) protocols based on classical error-correcting codes. The Quantum Key Distribution (QKD) systems and related protocols, in particular conditions, can use the classic channel coding techniques, instead of quantum error-correcting codes, both for correcting errors that occurred during the exchange of a cryptographic key between two authorized users, and to allow privacy amplification, in order to make completely vain a possible intruder attempt. The secret key is transmitted over a quantum, and thus safe, channel, characterized by very low transmission rates and high error rates. This channel is safe for the properties of a quantum system, where each measurement on the system perturbs the system itself, allowing the authorized users to “feel” if there is any intruder listening. Moreover, as shown by accurate experimental studies, the communication channel used for quantum key exchange is not able to reach high levels of reliability (the Quantum Bit Error Rate (QBER) takes values between 0.05 and 0.11), both because of the inherent characteristics of the system, and of the presence of a possible attacker. Thus, in order to obtain acceptable residual error rates, it is necessary to use a parallel classical and public channel, conversely characterized by high transmission rates and low error rates, on which to transmit only the redundancy bits of systematic channel codes with performance possibly close to the capacity limit.
量子密钥分发(QKD)应用中并行连接信道码的分析与设计
本文的目的是研究基于经典纠错码的量子密钥分发协议。量子密钥分发(QKD)系统和相关协议,在特定条件下,可以使用经典的信道编码技术,而不是量子纠错码,既可以纠正在两个授权用户之间交换加密密钥期间发生的错误,也可以允许隐私放大,以使可能的入侵者尝试完全无效。秘密密钥在量子信道上传输,因此是安全的,其特点是传输速率非常低,错误率很高。这个通道对于量子系统的特性来说是安全的,在量子系统中,系统上的每一次测量都会干扰系统本身,允许授权用户“感觉”是否有入侵者在监听。此外,精确的实验研究表明,用于量子密钥交换的通信信道无法达到高水平的可靠性(量子误码率(QBER)的值在0.05到0.11之间),这既是由于系统的固有特性,也是由于可能存在攻击者。因此,为了获得可接受的剩余错误率,有必要使用具有高传输速率和低错误率的并行经典和公共信道,在其上仅传输性能可能接近容量限制的系统信道码的冗余位。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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