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Controlling high-order chaotic discrete systems by lagged adaptive adjustment
1Nanyang Technological University, Nanyang Avenue, 63978 Singapore. awhhuang@ntu.edu.sg
A novel lagged adaptive adjustment mechanism stabilizes high-order discrete systems. Theoretical analysis and simulations confirm its practical effectiveness and efficiency for system stabilization.
Area of Science:
- Control Systems Engineering
- Applied Mathematics
Background:
- High-order discrete systems present significant stabilization challenges.
- Adaptive control mechanisms are crucial for dynamic system stability.
Purpose of the Study:
- To develop and validate a lagged adaptive adjustment mechanism.
- To enhance the stability of high-order discrete systems.
Main Methods:
- Theoretical analysis of the proposed mechanism.
- Computer simulations to demonstrate practical performance.
Main Results:
- The developed mechanism effectively stabilizes high-order discrete systems.
- Demonstrated efficiency of the adaptive adjustment approach.
Conclusions:
- The lagged adaptive adjustment mechanism is a viable solution for stabilizing complex discrete systems.
- The findings support the practical application of this control strategy.
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