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A clockless sequential PUF with autonomous majority voting

机译:具有自主多数表决权的无时钟顺序PUF

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Physical unclonable functions (PUFs) leverage minute silicon process variations to produce device-tied secret keys. The energy and area costs of creating keys from PUFs can far exceed the costs of the basic PUF circuits alone. Minimizing the end-to-end cost of reliable key generation is critical to enable broader adoption of PUFs. In this work, we introduce a new style of PUF that employs autonomous majority voting to improve reliability. The novelty of this design, and the source of its efficiency, is that the inherently sequential majority voting procedure is carried out by a self-timed circuit without orchestration by a global clock. We use circuit simulation to evaluate the energy versus reliability tradeoffs achieved by different parameterizations of the design, to show that the design performs well across a range of supply voltages, and to quantify the robustness of the design across a broad range of operating temperatures.
机译:物理不可克隆功能(PUF)利用微小的硅工艺变化来产生与设备相关的秘密密钥。从PUF创建密钥的能源和面积成本可能远远超过仅基本PUF电路的成本。最小化可靠密钥生成的端到端成本对于实现PUF的广泛采用至关重要。在这项工作中,我们介绍了一种采用自主多数投票以提高可靠性的PUF新样式。这种设计的新颖性及其效率的根源在于,固有的顺序多数表决程序是通过自定时电路执行的,而无需使用全局时钟进行编排。我们使用电路仿真来评估通过设计的不同参数设置实现的能量与可靠性之间的权衡,以表明该设计在一系列电源电压下表现良好,并在广泛的工作温度范围内量化了设计的鲁棒性。

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