硬件固有安全与印刷电子识别的IoE设备

Lukas Zimmermann, Alexander Scholz, M. Tahoori, A. Sikora, J. Aghassi‐Hagmann
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引用次数: 0

摘要

新型制造技术,如印刷电子技术,可能会使未来的万物互联应用成为可能,如大面积传感器设备、一次性安全装置和识别标签。打印的物理不可克隆函数(puf)很有希望作为硬件安全密钥嵌入到轻量级识别设备中。我们研究了基于打印PUF核心的混合PUF。对内部和内部距离分布的统计表明,性能适合于识别目的。我们的评估是基于PUF核心电路的统计模拟和由此产生的挑战-响应对。分析表明,通过打印的轻量化器件可以实现硬件固有的安全特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hardware-Intrinsic Security with Printed Electronics for Identification of IoE Devices
Novel manufacturing technologies, such as printed electronics, may enable future applications for the Internet of Everything like large-area sensor devices, disposable security, and identification tags. Printed physically unclonable functions (PUFs) are promising candidates to be embedded as hardware security keys into lightweight identification devices. We investigate hybrid PUFs based on a printed PUF core. The statistics on the intra- and inter-hamming distance distributions indicate a performance suitable for identification purposes. Our evaluations are based on statistical simulations of the PUF core circuit and the thereof generated challenge-response pairs. The analysis shows that hardware-intrinsic security features can be realized with printed lightweight devices.
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