About

Manlu Liu is a robotics researcher whose work spans autonomous systems, motion control, path planning, and nuclear safety applications. Best known for pioneering research in robotic radioactive source detection, Liu's 2020 paper on autonomous search of radioactive sources through mobile robots has garnered 42 citations, establishing a foundational framework for deploying robots in hazardous nuclear and biological environments. This thread of safety-critical robotics extends to digital twin-based inspection systems and nuclear power plant maintenance, reflecting a consistent commitment to protecting human workers in dangerous settings. Liu's contributions to manipulator control are equally significant, encompassing deep reinforcement learning approaches for robotic arms and sensitive collision detection methods for human-robot interaction environments. His path planning research—ranging from three-dimensional grid environments using genetic algorithms to soft robot obstacle avoidance via improved particle swarm optimization—demonstrates a breadth of algorithmic expertise developed over nearly two decades. Additional work on spherical robot motion control, fuzzy backstepping for dual-arm cooperation, and multi-robot collaborative decision-making for source search rounds out a diverse portfolio. With over 170 total citations across ten landmark papers, Liu has made enduring contributions to both the theoretical and applied dimensions of intelligent robotics.

Research Focus

Key Achievements

9
H-Index
19
Papers
212
Total Citations
11
Avg Citations/Paper
🏆 Most Cited Paper
Autonomous Search of Radioactive Sources through Mobile Robots
42 citations · 2020
📈 Most Prolific Year: 2023 (4 Papers)
🤝 Key Collaborators: 54
🏛 Institutions: Southwest University of Science and Technology, Harbin University, University of Science and Technology of China

Top Papers

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Key Collaborators

Contact & Links

Available for collaboration
Content generated · 14 days ago