IP Protection in TinyML
Jinwen Wang, Yuhao Wu, Han Liu, Bo Yuan, Roger D. Chamberlain, Ning Zhang
摘要
Tiny machine learning (TinyML) is an essential component of emerging smart microcontrollers (MCUs). However, the protection of the intellectual property (IP) of the model is an increasing concern due to the lack of desktop/server-grade resources on these power-constrained devices. In this paper, we propose STML, a system and algorithm co-design to Secure IP of TinyML on MCUs with ARM TrustZone. Our design jointly optimizes memory utilization and latency while ensuring the security and accuracy of emerging models. We implemented a prototype and benchmarked with 7 models, demonstrating STML reduces 40% of model protection runtime overhead on average.
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引用它的顶会 Paper3
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- TBNet: A Neural Architectural Defense Framework Facilitating DNN Model Protection in Trusted Execution EnvironmentsZiyu Liu, Tong Zhou, Yukui Luo, Xiaolin XuDAC 2024 · 被引用 4 次
- Secure Information Embedding in Forensic 3D FingerprintingCanran Wang, Jinwen Wang, Mi Zhou, Vinh Pham 等USENIX Security 2025
它引用的顶会 Paper9
- MCUNet: Tiny Deep Learning on IoT DevicesJi Lin, Wei-Ming Chen, Yujun Lin, John Cohn 等NeurIPS 2020 · 被引用 827 次
- CSI NN: Reverse Engineering of Neural Network Architectures Through Electromagnetic Side ChannelLejla Batina, Shivam Bhasin, Dirmanto Jap, Stjepan PicekUSENIX Security 2019 · 被引用 334 次
- RT-TEE: Real-time System Availability for Cyber-physical Systems using ARM TrustZoneJinwen Wang, Ao Li, Haoran Li, Chenyang Lu 等S&P 2022 · 被引用 69 次
- When Evil Calls: Targeted Adversarial Voice over IP NetworkHan Liu, Zhiyuan Yu, Mingming Zha, XiaoFeng Wang 等CCS 2022 · 被引用 13 次
- ShadowNet: A Secure and Efficient On-device Model Inference System for Convolutional Neural NetworksZhichuang Sun, Ruimin Sun, Changming Liu, Amrita Roy Chowdhury 等S&P 2023
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