Design-Based Fingerprinting Using Side-Channel Power Analysis for Protection Against IC Piracy

James Shey, Naghmeh Karimi, R. Robucci, C. Patel
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引用次数: 1

Abstract

Intellectual property (IP) and integrated circuit (IC) piracy are of increasing concern to IP/IC providers because of the globalization of IC design flow and supply chains. Such globalization is driven by the cost associated with the design, fabrication, and testing of integrated circuits and allows avenues for piracy. To protect the designs against IC piracy, we propose a fingerprinting scheme based on side-channel power analysis and machine learning methods. The proposed method distinguishes the ICs which realize a modified netlist, yet same functionality. Our method doesn't imply any hardware overhead. We specifically focus on the ability to detect minimal design variations, as quantified by the number of logic gates changed. Accuracy of the proposed scheme is greater than 96 percent, and typically 99 percent in detecting one or more gate-level netlist changes. Additionally, the effect of temperature has been investigated as part of this work. Results depict 95.4 percent accuracy in detecting the exact number of gate changes when data and classifier use the same temperature, while training with different temperatures results in 33.6 percent accuracy. This shows the effectiveness of building temperature-dependent classifiers from simulations at known operating temperatures.
基于侧信道功率分析的指纹识别设计防止IC盗版
由于集成电路设计流程和供应链的全球化,知识产权(IP)和集成电路(IC)盗版问题日益受到IP/IC供应商的关注。这种全球化是由与集成电路的设计、制造和测试相关的成本驱动的,并为盗版提供了途径。为了保护设计免受IC盗版,我们提出了一种基于侧信道功率分析和机器学习方法的指纹识别方案。该方法区分了实现修改后的网表但功能相同的集成电路。我们的方法不需要任何硬件开销。我们特别关注检测最小设计变化的能力,通过改变的逻辑门的数量来量化。所提出方案的准确性大于96%,在检测一个或多个门级网表变化时通常达到99%。此外,温度的影响也作为这项工作的一部分进行了研究。结果显示,当数据和分类器使用相同的温度时,检测门变化的确切数量的准确率为95.4%,而使用不同温度进行训练的准确率为33.6%。这显示了在已知工作温度下通过模拟构建温度相关分类器的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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