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Control for delayed bilateral teleoperation of a quadrotor
E Slawiñski1, D Santiago1, V Mut1
1Instituto de Automática, CONICET-Universidad Nacional de San Juan, Av. San Martín 1109 (O), San Juan 5400, Argentina.
ISA Transactions
|October 4, 2017
Summary
This study introduces a new control strategy for remote quadcopter operation with time delays. It simplifies control, ensuring stability and performance even with asymmetric delays.
Area of Science:
- Robotics
- Control Systems
- Aerospace Engineering
Background:
- Bilateral teleoperation systems often face challenges due to time delays, impacting stability and performance.
- Controlling complex systems like quadcopters in real-time with delays requires robust control strategies.
Purpose of the Study:
- To propose a cascade control scheme for stable and high-performance delayed bilateral teleoperation of a quadcopter.
- To simplify the teleoperation of a 6-Dimensional (6D) real quadcopter by mapping it to a 3-Dimensional (3D) virtual quadcopter.
Main Methods:
- A cascade control scheme employing P+d plus PID controllers for each degree of freedom (DOF).
- Lyapunov stability theory was used to determine control parameters based on asymmetric time delay magnitudes.
- Experimental validation of the proposed control scheme in a delayed bilateral teleoperation setup.
Main Results:
- The proposed control scheme effectively manages asymmetric time delays, ensuring system stability.
- The transformation to a 3D virtual quadcopter simplifies the teleoperation task.
- Experimental results demonstrate good practical performance and stability.
Conclusions:
- The developed cascade control scheme offers a stable, simple, and effective solution for delayed quadcopter teleoperation.
- The method provides a practical approach to setting control parameters according to time delay characteristics.
- This work contributes to enhancing the usability and reliability of teleoperated quadcopter systems.

