cs.AI updates on arXiv.org 07月10日 12:05
Towards LLM-based Root Cause Analysis of Hardware Design Failures
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本文探讨了大型语言模型(LLMs)在硬件设计过程中如何辅助解释设计问题和故障的根源,通过实验验证了LLMs在硬件设计安全分析中的潜力。

arXiv:2507.06512v1 Announce Type: cross Abstract: With advances in large language models (LLMs), new opportunities have emerged to develop tools that support the digital hardware design process. In this work, we explore how LLMs can assist with explaining the root cause of design issues and bugs that are revealed during synthesis and simulation, a necessary milestone on the pathway towards widespread use of LLMs in the hardware design process and for hardware security analysis. We find promising results: for our corpus of 34 different buggy scenarios, OpenAI's o3-mini reasoning model reached a correct determination 100% of the time under pass@5 scoring, with other state of the art models and configurations usually achieving more than 80% performance and more than 90% when assisted with retrieval-augmented generation.

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大型语言模型 硬件设计 故障分析 LLMs应用
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