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Quantum Secret Sharing in Noisy Environment

机译:嘈杂环境中的量子秘密共享

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As an unavoidable factor of real-world implementation of quantum cryptograph, quantum noise severally affects the security and reliability of the quantum system. In this paper, we study how QSS, an important branch of quantum cryptograph, is affected by noise or decoherence. QSS protocols for sharing classical information and quantum states are studied in four types of noise that usually encountered in real-world, i.e., the bit-flip, phase-flip (phase-damping), depolarizing and amplitude-damping noise, respectively. Two methods are introduced to evaluate the effect of noise. For the QSS protocol sharing classical information, the efficiency for generating secret key is used. Our results show that the efficiencies are quiet different from each other in four types of noise. While for the protocol sharing quantum states, the output states and the state-independent average fidelity are studied, respectively. It indicates that the players will get two different output states in the amplitude-damping noise, but get one output state in the other three types of noise. Besides, the state-independent average fidelity behaves differently from each other. Our study will be helpful for analyzing and improving quantum secure communications protocols in real-world.
机译:量子噪声是现实世界中实施量子密码器的不可避免的因素,它分别影响着量子系统的安全性和可靠性。在本文中,我们研究了量子密码的重要分支QSS如何受到噪声或退相干的影响。研究了用于共享经典信息和量子态的QSS协议,分别研究了在现实世界中经常遇到的四种类型的噪声,即位翻转,相翻转(相位阻尼),去极化和幅度阻尼噪声。引入了两种方法来评估噪声的影响。对于共享经典信息的QSS协议,使用了生成密钥的效率。我们的结果表明,在四种类型的噪声中,效率彼此之间是安静的。对于共享量子态的协议,分别研究了输出态和独立于状态的平均保真度。这表明演奏者将在振幅阻尼噪声中获得两种不同的输出状态,而在其他三种噪声中获得一种输出状态。此外,独立于状态的平均保真度彼此不同。我们的研究将有助于分析和改进现实世界中的量子安全通信协议。

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