计算光学物理不可克隆函数

G. Birch, Bryana L. Woo, C. LaCasse, Jaclynn J. Stubbs, Amber L. Dagel
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引用次数: 1

摘要

物理不可克隆功能(PUFs)是一种容易探测但难以预测的器件。文献中已经讨论过光学puf,传统的光学puf通常使用空间光调制器、相干照明和散射体;然而,这些系统可能是大型的,昂贵的,并且难以在实际条件下保持对齐。我们提出并演示了一种基于计算成像和压缩感知的新型光学PUF,以解决传统光学PUF所面临的这些挑战。这项工作描述了这种计算光学PUF (COPUF)的设计、仿真和原型,该PUF利用非相干多色照明通过加式制造的折射光学聚合物元件。我们演示了使用各种采样方法(包括压缩感知的使用)通过COPUF传递信息的能力。探讨了COPUF系统的灵敏度。我们将探索由COPUF架构支持的非传统PUF配置。本文提出并分析了双COPUF系统,该系统使用两个串行连接的COPUF,作为先前同意通信的两个实体之间进行认证和通信的一种手段。此配置支持对消息反转键进行估计,而无需在PUF生命周期的任何时刻计算单个COPUF反转键。我们的研究结果表明,利用计算成像技术构建廉价的光学puf是可能的。这可能会导致puf在不能有效利用电puf的地方的新用途,作为低成本的标签和密封,并可能作为身份验证和通信设备。
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Computational optical physical unclonable functions
Physical unclonable functions (PUFs) are devices which are easily probed but difficult to predict. Optical PUFs have been discussed within the literature, with traditional optical PUFs typically using spatial light modulators, coherent illumination, and scattering volumes; however, these systems can be large, expensive, and difficult to maintain alignment in practical conditions. We propose and demonstrate a new kind of optical PUF based on computational imaging and compressive sensing to address these challenges with traditional optical PUFs. This work describes the design, simulation, and prototyping of this computational optical PUF (COPUF) that utilizes incoherent polychromatic illumination passing through an additively manufactured refracting optical polymer element. We demonstrate the ability to pass information through a COPUF using a variety of sampling methods, including the use of compressive sensing. The sensitivity of the COPUF system is also explored. We explore non-traditional PUF configurations enabled by the COPUF architecture. The double COPUF system, which employees two serially connected COPUFs, is proposed and analyzed as a means to authenticate and communicate between two entities that have previously agreed to communicate. This configuration enables estimation of a message inversion key without the calculation of individual COPUF inversion keys at any point in the PUF life cycle. Our results show that it is possible to construct inexpensive optical PUFs using computational imaging. This could lead to new uses of PUFs in places where electrical PUFs cannot be utilized effectively, as low cost tags and seals, and potentially as authenticating and communicating devices.
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