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Binary Decision Diagram Assisted Modeling of FPGA-Based Physically Unclonable Function by Genetic Programming

机译:基于遗传编程的基于FPGA的物理不可克隆函数的二进制决策图辅助建模

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We present a computationally efficient technique to build concise and accurate computational models for large (60 or more inputs, 1 output) Boolean functions, only a very small fraction of whose truth table is known during model building. We use Genetic Programming with Boolean logic operators, and enhance the accuracy of the technique using Reduced Ordered Binary Decision Diagram based representations of Boolean functions, whereby we exploit their canonical forms. We demonstrate the effectiveness of the proposed technique by successfully modeling several common Boolean functions, and ultimately by accurately modeling a 63-input Physically Unclonable Function circuit design on Xilinx Field Programmable Gate Array. We achieve better accuracy (at lesser computational overhead) in predicting truth table entries not seen during model building, than a previously proposed machine learning based modeling technique for similar Physically Unclonable Function circuits using Support Vector Machines. The success of this modeling technique has important implications in determining the acceptability of Physically Unclonable Functions as useful hardware security primitives, in applications such as anti-counterfeiting of integrated circuits.
机译:我们提出了一种计算有效的技术,可以为大型(60个或更多输入,1个输出)布尔函数构建简洁而准确的计算模型,在模型构建过程中,只有很少一部分真值表是已知的。我们使用带有布尔逻辑运算符的遗传编程,并使用基于降序二元决策图的布尔函数表示形式来提高技术的准确性,从而利用其规范形式。我们通过成功地建模几个常见的布尔函数,并最终通过在Xilinx现场可编程门阵列上精确地建模63输入的物理不可克隆函数电路设计,证明了所提出技术的有效性。与使用支持向量机的类似物理不可克隆功能电路的先前提出的基于机器学习的建模技术相比,我们在预测模型构建期间看不到的真值表条目时具有更高的准确性(以较少的计算开销)。这种建模技术的成功对于在诸如集成电路防伪之类的应用中确定物理上不可克隆的功能作为有用的硬件安全原语的可接受性具有重要意义。

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