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PCBnet: A Dataset and Automatic Construction of SPICE Netlists from Schematic Images

Zhen Huang Yuhao Gao Yuzhi Liu Daian Cheng Chengyuan Shao Yucheng Chen Yongjian Jia Futing Zhang Yichen Shi Wenhao Wang Zuyan He Yangbo Wei Zhanfei Chen Jinlong Yan Yu Zhang Haoying Wu Ting-Jung Lin Lei He
Aug 2026
Artificial Intelligence Computer Vision

Abstract

Printed circuit boards (PCBs) are fundamental to modern electronic systems, yet AI-driven PCB design automation remains constrained by the lack of large-scale paired schematic-netlist datasets. PCB schematics are particularly challenging due to diverse component types, complex wiring topologies, and noisy textual annotations. To address this gap, we present PCBnet, a large-scale PCB schematic dataset comprising over 300 real-world designs with annotated pins and paired SPICE netlists. It contains more than 50,000 component instances, 150,000 wires, 100,000 text regions, and 400,000 characters. We further develop an automated schematic-to-netlist pipeline that combines visual recognition, topology construction, and domain-knowledge-guided multi-agent correction. The proposed method achieves 94.54% component detection mAP, 98.57% text recognition accuracy, and 84.47% end-to-end connectivity accuracy. PCBnet provides a benchmark and data foundation for future AI-driven PCB design automation.

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