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Implementation of Enhanced Parallel port interface for Frequency analysis in a configurable Ring Oscillator PUF circuits on Xilinx Spartan 3E architecture

机译:在Xilinx Spartan 3E架构上的可配置环形振荡器PUF电路中实现用于频率分析的增强型并行端口接口

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Hardware security has evolved from physical one-way functions to Physically Unclonable Functions (PUFs). A PUF produces a response for a given challenge by performing a functional operation. This paper demonstrates the Configurable Ring Oscillator (CRO) based PUF circuit with frequency meter. Frequencies are read through Enhanced Parallel Port (EPP) interface to enable efficient communication between the host and the Field Programmable Gate Array (FPGA) device. As a part of the work, 128 CROs are implemented on 128 Configurable Logic Blocks (CLBs) of the Spartan 3E FPGA device and frequencies are measured for every configuration of the CRO to generate the Challenge Response Pair (CRP) for each device. This experimental setup is carried out on 4 different FPGA devices and specific methodologies are used to generate responses which are consistent with time for every reading analyzed and different for different FPGA devices. The process involves selecting the optimum unit time pulse window to measure the frequencies of CROs and optimum number of CROs grouped as hard macro to enhance inter and intra Hamming Distance (HD) consequently improving uniqueness, reliability and uniformity metrics.
机译:硬件安全性已从物理单向功能演变为物理不可克隆功能(PUF)。 PUF通过执行功能操作来生成针对给定挑战的响应。本文演示了带有频率计的基于可配置环形振荡器(CRO)的PUF电路。通过增强型并行端口(EPP)接口读取频率,以实现主机与现场可编程门阵列(FPGA)设备之间的高效通信。作为工作的一部分,在Spartan 3E FPGA器件的128个可配置逻辑块(CLB)上实现了128个CRO,并测量了CRO的每种配置的频率,以为每个设备生成质询响应对(CRP)。该实验设置是在4种不同的FPGA器件上进行的,并且使用特定的方法来生成响应,该响应与所分析的每个读数的时间都一致,并且对于不同的FPGA器件也有所不同。该过程涉及选择最佳单位时间脉冲窗口以测量CRO的频率,并选择CRO的最佳数量(分为硬宏)以增强内部和内部汉明距离(HD),从而改善唯一性,可靠性和均匀性指标。

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