Tao Lin

Shanghai Jiao Tong University

Papers

26

Total Citations

1,031

H-Index

18

About

Tao Lin is a pioneering researcher in robotic welding systems, with a career dedicated to advancing intelligent automation in arc welding processes. Working primarily within the domain of Gas Tungsten Arc Welding (GTAW), Lin has made landmark contributions to real-time seam tracking, weld pool control, and full-penetration monitoring — challenges that sit at the critical intersection of robotics, computer vision, and process control engineering. Lin's most influential work, published in 2012, introduced passive vision-based seam tracking control during robotic GTAW processes, accumulating 175 citations and establishing a foundational framework that subsequent researchers have widely built upon. His broader body of work demonstrates a consistent drive to move welding robots beyond simple "teach and playback" paradigms toward genuinely adaptive, closed-loop systems capable of responding dynamically to real-world welding variability. Notable innovations include audio sensing of arc length for penetration control and neuron-based self-learning control architectures introduced as early as 2003. Across ten highly cited publications spanning over a decade, Lin's research has garnered more than 750 citations, reflecting substantial influence on both academic research and practical industrial robotics. His work remains essential reading for engineers and researchers developing next-generation intelligent welding automation systems.

Research Focus

Key Achievements

18
H-Index
26
Papers
1,031
Total Citations
40
Avg Citations/Paper
🏆 Most Cited Paper
Real-time seam tracking control technology during welding robot GTAW process based on passive vision sensor
175 citations · 2012
📈 Most Prolific Year: 2007 (6 Papers)
🤝 Key Collaborators: 36
🏛 Institutions: Shanghai Jiao Tong University

Top Papers

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Key Collaborators

Contact & Links

Available for collaboration
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