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Intelligent robust tracking control for a class of uncertain strict-feedback nonlinear systems
1Department of Electrical Engineering, Kun-Shan University, Tainan 71003, Taiwan. ycchang@mail.ksu.edu.tw
Summary
This study introduces adaptive fuzzy or neural network controllers for nonlinear systems with uncertainties. The robust tracking control ensures bounded system states and minimal trajectory errors, simplifying implementation.
Area of Science:
- Control Systems Engineering
- Nonlinear Dynamics
- Artificial Intelligence
Background:
- Designing robust tracking controllers for nonlinear systems with uncertainties and disturbances is challenging.
- Existing methods may lack computational simplicity or ease of implementation.
- Strict-feedback nonlinear systems require specialized control strategies.
Purpose of the Study:
- To develop adaptive fuzzy-based or neural-network-based dynamic feedback tracking controllers.
- To ensure boundedness of all states and signals in the closed-loop system.
- To minimize trajectory tracking errors in the presence of uncertainties.
Main Methods:
- Utilizing adaptive approximators with linearly parameterized models.
- Implementing a partitioned procedure for fuzzy/neural network basis functions.
- Extending the approach to nonlinearly parameterized adaptive approximators.
- Designing intelligent robust tracking control schemes.
Main Results:
- The proposed controllers ensure all closed-loop system states and signals remain bounded.
- Trajectory tracking errors are minimized effectively.
- The developed control schemes exhibit computational simplicity and are easy to implement.
- Simulation examples validate the effectiveness of the proposed algorithms.
Conclusions:
- The adaptive fuzzy/neural network controllers provide robust tracking for strict-feedback nonlinear systems.
- The methods offer a computationally simple and easily implementable solution.
- The approach effectively handles plant uncertainties and external disturbances.
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