Naimeng Cang

Hainan University

Papers

15

Total Citations

83

H-Index

5

About

Naimeng Cang is an emerging robotics and computational intelligence researcher whose work centers on neural network-based optimization, redundant robot manipulator control, and motion planning. Cang has made significant contributions to the development of zeroing neural network (ZNN) frameworks, advancing both continuous- and discrete-time formulations to solve time-dependent mathematical problems—including equality-constrained quadratic programs, nonlinear equations, and boundary-constrained linear equations—with enhanced robustness against real-world noise disturbances. Their most-cited work (2024, 20 citations) introduced a harmonic noise rejection ZNN specifically designed to maintain accuracy under challenging noise conditions, representing a meaningful step forward in practical neural network deployment for robotic applications. Cang has further extended these foundations to dual-arm robot systems and cooperative motion control, developing adaptive noise rejection strategies that address increasingly complex coordination demands. Their contributions to repetitive motion planning at both velocity and acceleration levels, kinematic modeling of mobile robot manipulators, and visual-inertial SLAM systems demonstrate a broad yet cohesive research vision spanning theoretical optimization and applied robotics. With a body of highly recent work collectively accumulating over 75 citations, Cang is establishing a strong early-career reputation as a versatile and prolific contributor to intelligent robotic systems research.

Research Focus

Key Achievements

5
H-Index
15
Papers
83
Total Citations
6
Avg Citations/Paper
🏆 Most Cited Paper
Harmonic Noise Rejection Zeroing Neural Network for Time-Dependent Equality-Constrained Quadratic Program and Its Application to Robot Arms
20 citations · 2024
📈 Most Prolific Year: 2024 (8 Papers)
🤝 Key Collaborators: 33
🏛 Institutions: Hainan University

Top Papers

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Key Collaborators

Contact & Links

Available for collaboration
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