GNN4IP: Graph Neural Network for Hardware Intellectual Property Piracy Detection
Rozhin Yasaei, Shih-Yuan Yu, Emad Kasaeyan Naeini, Mohammad Abdullah Al Faruque
摘要
Aggressive time-to-market constraints and enormous hardware design and fabrication costs have pushed the semiconductor industry toward hardware Intellectual Properties (IP) core design. However, the globalization of the integrated circuits (IC) supply chain exposes IP providers to theft and illegal redistribution of IPs. Watermarking and fingerprinting are proposed to detect IP piracy. Nevertheless, they come with additional hardware overhead and cannot guarantee IP security as advanced attacks are reported to remove the watermark, forge, or bypass it. In this work, we propose a novel methodology, GNN4IP, to assess similarities between circuits and detect IP piracy. We model the hardware design as a graph and construct a graph neural network model to learn its behavior using the comprehensive dataset of register transfer level codes and gate-level netlists that we have gathered. GNN4IP detects IP piracy with 96% accuracy in our dataset and recognizes the original IP in its obfuscated version with 100% accuracy.
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引用它的顶会 Paper3
- AttackGNN: Red-Teaming GNNs in Hardware Security Using Reinforcement LearningVasudev Gohil, Satwik Patnaik, Dileep Kalathil, Jeyavijayan RajendranUSENIX Security 2024 · 被引用 9 次
- Free and Fair Hardware: A Pathway to Copyright Infringement-Free Verilog Generation using LLMsSam Bush, Matthew DeLorenzo, Phat Tieu, Jeyavijayan RajendranDAC 2025 · 被引用 5 次
- LLMPirate: LLMs for Black-box Hardware IP PiracyVasudev Gohil, Matthew DeLorenzo, Veera Vishwa Achuta Sai Venkat Nallam, Joey See 等NDSS 2025
它引用的顶会 Paper2
- Neural Network-based Graph Embedding for Cross-Platform Binary Code Similarity DetectionXiaojun Xu, Chang Liu, Qian Feng, Heng Yin 等CCS 2017 · 被引用 682 次
- DECOY: DEflection-Driven HLS-Based Computation Partitioning for Obfuscating Intellectual PropertYJianqi Chen, Monir Zaman, Yiorgos Makris, R. D. Shawn Blanton 等DAC 2020 · 被引用 28 次
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