cs.AI updates on arXiv.org 07月09日 12:02
DeepCell: Self-Supervised Multiview Fusion for Circuit Representation Learning
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本文介绍了DeepCell,一个结合多视图信息并使用自监督Mask Circuit Modeling策略的电路表示学习框架,其在预测准确性和重建质量上均达到新高度,并在关键EDA任务中显著优于现有工具。

arXiv:2502.06816v2 Announce Type: replace-cross Abstract: We introduce DeepCell, a novel circuit representation learning framework that effectively integrates multiview information from both And-Inverter Graphs (AIGs) and Post-Mapping (PM) netlists. At its core, DeepCell employs a self-supervised Mask Circuit Modeling (MCM) strategy, inspired by masked language modeling, to fuse complementary circuit representations from different design stages into unified and rich embeddings. To our knowledge, DeepCell is the first framework explicitly designed for PM netlist representation learning, setting new benchmarks in both predictive accuracy and reconstruction quality. We demonstrate the practical efficacy of DeepCell by applying it to critical EDA tasks such as functional Engineering Change Orders (ECO) and technology mapping. Extensive experimental results show that DeepCell significantly surpasses state-of-the-art open-source EDA tools in efficiency and performance.

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DeepCell 电路表示学习 EDA工具
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