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FPGA based device specific key generation method using Physically Uncloanble Functions and neural networks

机译:基于FPGA的设备专用密钥生成方法,使用物理不可克隆函数和神经网络

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The fierce competition in today's global market has made trustworthy authentication an essential aspect for the implementation of valuable designs. FPGAs, in particular, need built-in security not only to prevent reverse engineering but also to prevent hacking and cloning. To counter such threats, methodologies for preventing IC piracy have been developed that require a unique signature key for every fabricated chip. Physically Unclonable Functions are circuits that are capable of generating a unique signature for a given IC. This paper presents a design for trustworthy authentication of an FPGA taking advantage of its unique architecture. The PUFs are implemented on Xilinx Spartan XC2S100 FPGAs. Intra chip and Inter chip responses are analyzed to determine the extent of uniqueness of the PUF responses. Hamming distances for 128 bit responses are calculated and represented graphically. The uniqueness of the responses is calculated as 49.0625%. This work also involves an error correction process using bidirectional associative memories to correct the error bits occurring due to considerable changes in temperature and other environmental factors. The proposed method yields better results and also reduces the computational complexity compared to conventionally used codes like BCH codes. The proposed method drives the failure rates below 1 ppm.
机译:在当今全球市场的激烈竞争中,可信赖的认证已成为实现有价值的设计的重要方面。尤其是FPGA,不仅需要内置安全性,以防止逆向工程,而且还需要防止黑客入侵和克隆。为了应对这种威胁,已经开发了防止IC盗版的方法,每个制造的芯片都需要唯一的签名密钥。物理上不可克隆的功能是能够为给定IC生成唯一签名的电路。本文提出了一种利用FPGA独特架构进行可信赖认证的设计。 PUF在Xilinx Spartan XC2S100 FPGA上实现。分析芯片内和芯片间响应以确定PUF响应的唯一性程度。计算并以图形表示128位响应的汉明距离。响应的唯一性计算为49.0625%。这项工作还涉及使用双向关联存储器的纠错过程,以纠正由于温度和其他环境因素的显着变化而出现的错误位。与常规使用的代码(例如BCH代码)相比,该方法产生了更好的结果,并且还降低了计算复杂度。所提出的方法使故障率低于1 ppm。

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