Quantum Cryptography: A New Generation of Information Technology Security System

M. Sharbaf
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引用次数: 54

Abstract

Quantum cryptography is an emerging technology in which two parties can secure network communications by applying the phenomena of quantum physics. The security of these transmissions is based on the inviolability of the laws of quantum mechanics. Quantum cryptography was born in the early seventies when Steven Wiesner wrote "Conjugate Coding", which took more than ten years to end this paper. The quantum cryptography relies on two important elements of quantum mechanics - the Heisenberg Uncertainty principle and the principle of photon polarization. The Heisenberg Uncertainty principle states that, it is not possible to measure the quantum state of any system without distributing that system. The principle of photon polarization states that, an eavesdropper can not copy unknown qubits i.e. unknown quantum states, due to no-cloning theorem which was first presented by Wootters and Zurek in 1982. This research paper concentrates on the theory of  quantum cryptography, and how this technology contributes to the network security. This research paper summarizes the current state of quantum cryptography, and the real–world application implementation of this technology, and finally the future direction in which the quantum cryptography is headed forwards.
量子密码学:新一代信息技术安全体系
量子密码学是一种利用量子物理现象实现网络通信双方安全的新兴技术。这些传输的安全性是基于量子力学定律的不可侵犯性。量子密码学诞生于70年代初,当时Steven Wiesner写了《共轭编码》(Conjugate Coding),花了十多年时间才完成这篇论文。量子密码学依赖于量子力学的两个重要元素——海森堡测不准原理和光子偏振原理。海森堡测不准原理指出,不分布任何系统是不可能测量该系统的量子态的。光子偏振原理表明,窃听者不能复制未知的量子比特,即未知的量子态,这是由于1982年由wooters和Zurek首次提出的不可克隆定理。本文主要研究量子密码学的理论,以及该技术对网络安全的贡献。本研究论文总结了量子密码学的现状,以及该技术在现实世界中的应用实现,最后展望了量子密码学的未来发展方向。
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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