Author Affiliations
Abstract
Shanghai Jiao Tong University, School of Electronic Information and Electrical Engineering, State Key Laboratory of Advanced Optical Communication Systems and Networks, Shanghai, China
Chaotic optical communication has shown large potential as a hardware encryption method in the physical layer. As an important figure of merit, the bit rate–distance product of chaotic optical communication has been continually improved to 30 Gb/s × 340 km, but it is still far from the requirement for a deployed optical fiber communication system, which is beyond 100 Gb/s × 1000 km. A chaotic carrier can be considered as an analog signal and suffers from fiber channel impairments, limiting the transmission distance of high-speed chaotic optical communications. To break the limit, we propose and experimentally demonstrate a pilot-based digital signal processing scheme for coherent chaotic optical communication combined with deep-learning-based chaotic synchronization. Both transmission impairment recovery and chaotic synchronization are realized in the digital domain. The frequency offset of the lasers is accurately estimated and compensated by determining the location of the pilot tone in the frequency domain, and the equalization and phase noise compensation are jointly performed by the least mean square algorithm through the time domain pilot symbols. Using the proposed method, 100 Gb / s chaotically encrypted quadrature phase-shift keying (QPSK) signal over 800 km single-mode fiber (SMF) transmission is experimentally demonstrated. In order to enhance security, 40 Gb / s real-time chaotically encrypted QPSK signal over 800 km SMF transmission is realized by inserting pilot symbols and tone in a field-programmable gate array. This method provides a feasible approach to promote the practical application of chaotic optical communications and guarantees the high security of chaotic encryption.
chaotic optical communication physical layer security deep learning digital signal processing 
Advanced Photonics Nexus
2024, 3(1): 016003
作者单位
摘要
1 国网上海市电力公司信息通信公司,上海 200122
2 上海交通大学 区域光纤通信网与新型光通信系统国家重点实验室,上海 200240
混沌信号以其宽带、类噪声以及不可长期预测的特性在保密通信领域获得了广泛的关注。文章提出利用混沌保密光通信技术来保障电力通信网中的传输安全性,首先搭建了传统的基于光-电-光结构的混沌光加密装置,研究该混沌保密光通信系统在电力通信网中应用可能存在的安全问题,针对传统方案中时延特征的安全性问题,提出了消除混沌时延特征参数的方案,并通过实验验证了混沌时延特征参数的隐藏。同时,针对参数估计的攻击方式,分析了混沌保密光通信系统的安全性能。而对于暴力破解,分析了该方案的密钥空间,证明该方案的密钥空间获得极大的扩展,说明了暴力破解的困难性,证明了该方案可在电力通信网中保障传输的安全性。
混沌保密光通信 时延隐藏 保密性增强 电力通信网 chaotic optical communication time delay concealment security enhancement power communication network 
光通信研究
2018, 44(2): 11
作者单位
摘要
西南交通大学信息科学与技术学院, 四川 成都 610031
安全性是混沌通信中的重要问题。基于一个外光反馈半导体激光器驱动两个互耦合激光器的混沌通信系统,研究激光混沌系统中反馈时延与耦合时延特征, 并应用龙格库塔法进行动态仿真。重点分析了当调节一些可控参数(耦合时延和驱动强度)时,能够改变两耦合激光器输出自相关函数中反馈时延和耦合时延幅值的差异,以此掩藏反馈时延,从而得出更优载波。仿真结果说明利用耦合时延可以增强激光混沌系统的安全性。最后给出了在优化载波后系统同步质量的讨论。
光通信 激光混沌系统 耦合时延 驱动强度 安全性 时延隐藏 
中国激光
2012, 39(1): 0102009
作者单位
摘要
太原理工大学 理学院物理系,山西 太原 030024
利用激光器可以产生高维宽带混沌载波,并有望构建混沌激光保密通信信道。结合国内外的研究工作,从密码分析学的角度讨论了混沌激光通信的保密性能,介绍了混沌激光通信保密性能的研究进展,重点分析了目前报道的几种增强混沌激光通信保密性能方案的优缺点,同时提出了其他几种备用措施。
混沌激光通信 保密性 激光器 密钥 
激光与光电子学进展
2010, 47(3): 030602

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