Veer Alakshendra
Papers
9
Total Citations
258
H-Index
6
About
Veer Alakshendra is a robotics researcher whose work centers on mobile robot control, dynamic modeling, and adaptive control systems, with a particular focus on omnidirectional mobile robots. His most significant contributions lie in developing advanced control strategies for Mecanum-wheeled mobile robots — platforms with broad applications spanning healthcare, industrial automation, military, and space environments. Alakshendra's most celebrated work, "Adaptive Robust Control of Mecanum-Wheeled Mobile Robot with Uncertainties" (2016), has garnered 147 citations, establishing him as a notable voice in robust control theory for wheeled robotics. Alongside companion experimental validation studies, his research rigorously addresses trajectory tracking under real-world uncertainties such as friction forces and viscous damping — challenges that undermine conventional control approaches. His use of bond graph modeling and flatness-based nonlinear control demonstrates methodological breadth, while his work on simultaneous balancing and trajectory tracking showcases creative problem-solving for practical object-carrying scenarios. Beyond mobile platforms, Alakshendra has explored human-robot interaction through imitation learning and kinematics-based robot programming via human arm motion, broadening his contributions toward intuitive robot teleoperation. With a cumulative citation count exceeding 250, his body of work offers valuable theoretical foundations and experimental insights for students and researchers working at the intersection of control engineering and autonomous mobile robotics.
Research Focus
Key Achievements
Top Papers
- 1Adaptive robust control of Mecanum-wheeled mobile robot with uncertainties147 citations · 2016
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- 5Kinematics-based approach for robot programming via human arm motion10 citations · 2016
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- 7Robust Trajectory Tracking Control for an Omnidirectional Mobile Robot6 citations · 2017
- 8Imitation Learning in Industrial Robots3 citations · 2017
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