论文标题

量化光学物理不可倾信函数的灵敏度和不倾销性

Quantifying the Sensitivity and Unclonability of Optical Physical Unclonable Functions

论文作者

Lio, Giuseppe Emanuele, Nocentini, Sara, Pattelli, Lorenzo, Cara, Eleonora, Wiersma, Diederik Sybolt, Rührmair, Ulrich, Riboli, Francesco

论文摘要

由于其无与伦比的熵,复杂性和安全级别,光学物理不可统一的功能(PUF)当前在文献中引起了很多兴趣。尽管有大量现有作品,但它们的核心特征之一从未详细量化,即它们的身体上的不荡情。本文解决了这个基本但在很大程度上没有解决的问题。在模拟和/或实验中,研究了基于衍射的光学响应的​​灵敏度,相对于各种较小的变化,例如散射器的位置,大小和数量的变化,以及物理不可交接函数(PUF)和测量设备之间空间比对的扰动。我们的分析重点是2D光学PUF,因为它们与集成应用程序的相关性以及在几何形状的物理结构可访问时可以提出的安全问题的需要。在这项研究的结果中,敏感性分析表明,散点子在\ si {30} {\ nano \ meter}的顺序上的位置扰动,即远低于探测激光的波长\ si {632} {632} {\ nano \ nano \ nano \ nano \ nano \米}的响应范围的启示,以便一定的启示atrutiativatient and Issrutiative at Insutiative atrutiativatient futfient and froutivatient。这些结果支持并量化克隆光PUF所需的高对抗性努力,即使在2D布局中也是如此。

Due to their unmatched entropy, complexity, and security level, optical Physical Unclonable Functions (PUFs) currently receive a lot of interest in the literature. Despite the large body of existing works, however, one of their core features has never been quantified in detail, namely their physical unclonability. This paper tackles this fundamental and yet largely unaddressed issue. In simulations and/or experiments, the sensitivity of diffraction-based optical responses is investigated with respect to various small alterations such as variation in the position, size, and number of the scatterers, as well as perturbations in the spatial alignment between the physical unclonable function (PUF) and the measurement apparatus. Our analysis focuses on 2D optical PUFs because of their relevance in integrated applications and the need to reply to security concerns that can be raised when the physical structure of the geometry is accessible. Among the results of this study, the sensitivity analysis shows that a positional perturbation of scatterers on the order of \SI{30}{\nano\meter}, i.e., far below the wavelength of the probing laser light of \SI{632}{\nano\meter} wavelength, is sufficient to invalidate the PUF response and thus detect a forgery attempt. These results support and quantify the high adversarial efforts required to clone optical PUFs, even for 2D layouts.

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