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Machine Learning and Hardware security: Challenges and Opportunities -Invited Talk-

机译:机器学习与硬件安全:挑战与机遇-特邀演讲-

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摘要

Machine learning techniques have significantly changed our lives. They helped improving our everyday routines, but they also demonstrated to be an extremely helpful tool for more advanced and complex applications. However, the implications of hardware security problems under a massive diffusion of machine learning techniques are still to be completely understood. This paper first highlights novel applications of machine learning for hardware security, such as evaluation of post quantum cryptography hardware and extraction of physically unclonable functions from neural networks. Later, practical model extraction attack based on electromagnetic side-channel measurements are demonstrated followed by a discussion of strategies to protect proprietary models by watermarking them.
机译:机器学习技术极大地改变了我们的生活。他们帮助改善了我们的日常工作,但是对于更高级和更复杂的应用程序,它们也被证明是非常有用的工具。但是,在机器学习技术的广泛传播下,硬件安全问题的含义仍有待完全理解。本文首先重点介绍了机器学习在硬件安全性方面的新应用,例如对后量子密码学硬件的评估以及从神经网络中提取物理不可克隆的功能。随后,论证了基于电磁侧信道测量的实用模型提取攻击,然后讨论了通过对专有模型加水印来保护专有模型的策略。

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