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Design and implementation of an improved MA‐APUF with higher uniqueness and security

机译:具有更高唯一性和安全性的改进MA-APU的设计与实现

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An arbiter physical unclonable function (APUF) has exponential challenge‐response pairs and is easy to implement on field‐programmable gate arrays (FPGAs). However, modeling attacks based on machine learning have become a serious threat to APUFs. Although the modeling‐attack resistance of an MA‐APUF has been improved considerably by architecture modifications, the response generation method of an MA‐APUF results in low uniqueness. In this study, we demonstrate three design problems regarding the low uniqueness that APUF‐based strong PUFs may exhibit, and we present several foundational principles to improve the uniqueness of APUF‐based strong PUFs. In particular, an improved MA‐APUF design is implemented in an FPGA and evaluated using a well‐established experimental setup. Two types of evaluation metrics are used for evaluation and comparison. Furthermore, evolution strategies, logistic regression, andK ‐junta functions are used to evaluate the security of our design. The experiment results reveal that the uniqueness of our improved MA‐APUF is 81.29% (compared with that of the MA‐APUF, 13.12%), and the prediction rate is approximately 56% (compared with that of the MA‐APUF (60%‐80%).
机译:仲裁器物理不可渗透功能(APUF)具有指数挑战 - 响应对,并且易于在现场可编程门阵列(FPGA)上实现。然而,基于机器学习的建模攻击已成为对APUFS的严重威胁。尽管通过架构修改显着提高了MA-APUF的建模攻击阻力,但MA-APUF的响应生成方法导致低唯一性。在这项研究中,我们展示了关于基于APUF的强PUFS可能表现出的低唯一性的三种设计问题,并且我们提出了几种基于APUF的强PUF的唯一性的基础原则。特别地,改进的MA-APUF设计在FPGA中实现并使用良好的实验装置进行评估。两种类型的评估度量用于评估和比较。此外,演变策略,逻辑回归和 k -junta函数用于评估我们设计的安全性。实验结果表明,我们改善的MA-APUF的独特性是81.29%(与MA-APUF,13.12%)相比,预测率约为56%(与MA-APUF相比(60%) -80%)。

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