Papers

59

Total Citations

1,380

H-Index

15

About

Guido Herrmann is a prominent robotics and control systems researcher whose work spans adaptive control, human-robot interaction, and reinforcement learning. His most influential contribution, "Robust Adaptive Finite-Time Parameter Estimation and Control for Robotic Systems" (2014, 387 citations), introduced a groundbreaking framework for adaptive parameter estimation in nonlinear robotic systems using auxiliary filtered variables, establishing him as a leading voice in robust adaptive control theory. Alongside this, his widely cited overview of reinforcement learning and optimal adaptive control (2012, 232 citations) has served as an essential reference for researchers bridging classical control and machine learning approaches. Herrmann has made significant strides in humanoid robotics, contributing to safe compliance control and human-robot interaction (HRI), with multiple publications addressing safety, anti-windup compensation, and real-time implementation on platforms such as the BERT II robotic arm. His survey on compliance control techniques (2014) reflects his commitment to supporting emerging researchers in the field. More recently, his work on distributed neural network training using consensus algorithms (2022) demonstrates an evolving interest in multi-agent deep reinforcement learning for robotic manipulation. With hundreds of citations across diverse topics, Herrmann's research continues to shape both theoretical foundations and practical advances in intelligent robotics.

Research Focus

Key Achievements

15
H-Index
59
Papers
1,380
Total Citations
23
Avg Citations/Paper
🏆 Most Cited Paper
Robust adaptive finite‐time parameter estimation and control for robotic systems
387 citations · 2014
📈 Most Prolific Year: 2010 (9 Papers)
🤝 Key Collaborators: 88
🏛 Institutions: University of Bristol, Bristol Robotics Laboratory, University of Manchester, DuPont (United States)

Top Papers

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Key Collaborators

Contact & Links

Available for collaboration
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