Integrated Physical Layer Key Distribution by Optical Steganography in Quantum Noise Stream Cipher System

IF 2.1 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Photonics Journal Pub Date : 2024-11-11 DOI:10.1109/JPHOT.2024.3495834
Yuanxiang Wang;Hanwen Luo;Tian Qiu;Linsheng Zhong;Xiaoxiao Dai;Qi Yang;Lei Deng;Deming Liu;Mengfan Cheng
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Abstract

To counter heterodyne measurements, correlation attacks, and known plaintext attacks, seed key refresh is critical to the security of a quantum noise stream cipher system. Integrated key distribution is an important means to reduce the deployment cost, as key exchange and public transmission are performed over the same channel. In this paper, we propose a novel method for integrated key distribution by optical steganography based on dither-remodulation in a bias controller of the Mach-Zehnder modulator. No extra wavelength or bandwidth is used for the stealth channel, which is transmitted together within the public channel. The concealing depth of the stealth signal reaches −36.2 dB, and its steganographic effect provides additional security, which further improves the overall security of the optical physical layer. The bidirectional stealth transmission can support light-weight temporary key exchange mechanism, combined with asymmetric encryption algorithm, to achieve high security and forward/backward security of seed keys. We experimentally demonstrate a real-time integrated key distribution via optical steganography in a QNSC system. The experimental results show that a real-time bidirectional stealth link is established at a rate of 1 kbps in a fiber transmission distance of 97 km for a public QNSC transmission at a rate of 32 Gbps, providing a seed key refresh frequency of over 1 Hz.
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量子噪声流密码系统中的光学隐写术集成物理层密钥分发
为了应对异频测量、相关攻击和已知明文攻击,种子密钥刷新对量子噪声流密码系统的安全性至关重要。集成密钥分发是降低部署成本的重要手段,因为密钥交换和公开传输是在同一信道上进行的。在本文中,我们提出了一种基于马赫-泽恩德调制器偏置控制器中的双向重调制的光隐写集成密钥分配新方法。隐秘信道不使用额外的波长或带宽,而是与公共信道一起传输。隐形信号的隐藏深度达到 -36.2 dB,其隐形效果提供了额外的安全性,进一步提高了光物理层的整体安全性。双向隐形传输可支持轻量级临时密钥交换机制,结合非对称加密算法,实现种子密钥的高安全性和前向/后向安全性。我们在 QNSC 系统中实验演示了通过光学隐写术实现的实时集成密钥分配。实验结果表明,在速率为 32 Gbps 的公共 QNSC 传输中,在 97 千米的光纤传输距离内以 1 kbps 的速率建立了实时双向隐身链路,种子密钥刷新频率超过 1 Hz。
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来源期刊
IEEE Photonics Journal
IEEE Photonics Journal ENGINEERING, ELECTRICAL & ELECTRONIC-OPTICS
CiteScore
4.50
自引率
8.30%
发文量
489
审稿时长
1.4 months
期刊介绍: Breakthroughs in the generation of light and in its control and utilization have given rise to the field of Photonics, a rapidly expanding area of science and technology with major technological and economic impact. Photonics integrates quantum electronics and optics to accelerate progress in the generation of novel photon sources and in their utilization in emerging applications at the micro and nano scales spanning from the far-infrared/THz to the x-ray region of the electromagnetic spectrum. IEEE Photonics Journal is an online-only journal dedicated to the rapid disclosure of top-quality peer-reviewed research at the forefront of all areas of photonics. Contributions addressing issues ranging from fundamental understanding to emerging technologies and applications are within the scope of the Journal. The Journal includes topics in: Photon sources from far infrared to X-rays, Photonics materials and engineered photonic structures, Integrated optics and optoelectronic, Ultrafast, attosecond, high field and short wavelength photonics, Biophotonics, including DNA photonics, Nanophotonics, Magnetophotonics, Fundamentals of light propagation and interaction; nonlinear effects, Optical data storage, Fiber optics and optical communications devices, systems, and technologies, Micro Opto Electro Mechanical Systems (MOEMS), Microwave photonics, Optical Sensors.
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