Papers

12

Total Citations

216

H-Index

9

About

Mostafa Bagheri is a robotics and control systems researcher whose work centers on robot manipulator control, trajectory optimization, and autonomous robotic systems. He has made significant contributions to addressing some of the most persistent challenges in robotic manipulation, particularly time delay compensation and energy-efficient motion planning for high-degrees-of-freedom (DOF) systems. Bagheri's most cited work, a 2019 study on feedback linearization-based predictors for time delay control (59 citations), tackles the critical problem of input delays in teleoperation and networked robotic systems — a challenge with direct implications for remote surgery, industrial automation, and assistive robotics. His complementary research on adaptive control using batch least-square identification (29 citations) further advances robust manipulation under model uncertainty. A recurring focus throughout his portfolio is the 7-DOF Baxter manipulator, which he has used as an experimental platform for validating novel trajectory optimization frameworks employing multivariable extremum seeking (25 citations) and deep learning-based 3D path planning (11 citations). His earlier work on humanoid shoulder kinematics (31 citations) reflects a broader interest in bimanual robotic systems and workspace optimization. Collectively accumulating over 200 citations, Bagheri's research bridges theoretical control design with rigorous experimental validation, offering practical solutions for next-generation intelligent robotic systems.

Research Focus

Key Achievements

9
H-Index
12
Papers
216
Total Citations
18
Avg Citations/Paper
🏆 Most Cited Paper
Feedback linearization based predictor for time delay control of a high-DOF robot manipulator
59 citations · 2019
📈 Most Prolific Year: 2019 (4 Papers)
🤝 Key Collaborators: 9
🏛 Institutions: University of California San Diego, Italian Institute of Technology, San Diego State University

Top Papers

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Key Collaborators

Contact & Links

Available for collaboration
Content generated · 15 days ago