计算机科学
稳健性(进化)
认证(法律)
数字签名
物理不可克隆功能
物理层
签名(拓扑)
光谱特征
密码学
计算机安全
物理
散列函数
电信
数学
无线
生物化学
化学
几何学
量子力学
基因
作者
Pantea Nadimi Goki,Thomas Teferi Mulugeta,Roberto Caldelli,L. Potì
出处
期刊:Sensors
[Multidisciplinary Digital Publishing Institute]
日期:2023-06-01
卷期号:23 (11): 5269-5269
被引量:8
摘要
We introduce a technique to generate and read the digital signature of the networks, channels, and optical devices that possess the fiber-optic pigtails to enhance physical layer security (PLS). Attributing a signature to the networks or devices eases the identification and authentication of networks and systems thus reducing their vulnerability to physical and digital attacks. The signatures are generated using an optical physical unclonable function (OPUF). Considering that OPUFs are established as the most potent anti-counterfeiting tool, the created signatures are robust against malicious attacks such as tampering and cyber attacks. We investigate Rayleigh backscattering signal (RBS) as a strong OPUF to generate reliable signatures. Contrary to other OPUFs that must be fabricated, the RBS-based OPUF is an inherent feature of fibers and can be easily obtained using optical frequency domain reflectometry (OFDR). We evaluate the security of the generated signatures in terms of their robustness against prediction and cloning. We demonstrate the robustness of signatures against digital and physical attacks confirming the unpredictability and unclonability features of the generated signatures. We explore signature cyber security by considering the random structure of the produced signatures. To demonstrate signature reproducibility through repeated measurements, we simulate the signature of a system by adding a random Gaussian white noise to the signal. This model is proposed to address services including security, authentication, identification, and monitoring.
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