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Published on: August 5, 2013
H∞ non-fragile observer-based dynamic event-triggered sliding mode control for nonlinear networked systems with
1Faculty of Electronic Information and Electrical Engineering, Dalian University of Technology, Dalian, 116023, China; State Key Laboratory of Coastal and Offshore Engineering, Dalian University of Technology, Dalian, 116023, China.
This study introduces a robust non-fragile observer-based dynamic event-triggered sliding mode control (SMC) for nonlinear networked systems. The method enhances system stability and reduces data transmission under sensor saturation and dead-zone nonlinearities.
Area of Science:
- Control Systems Engineering
- Nonlinear Systems Analysis
- Networked Control Systems
Background:
- Networked control systems (NCS) face challenges from sensor saturation and input nonlinearities.
- Event-triggered control strategies aim to reduce communication load in NCS.
- Robust control is crucial for maintaining stability in the presence of uncertainties and disturbances.
Purpose of the Study:
- To develop a robust non-fragile observer-based dynamic event-triggered sliding mode control (SMC) for discrete-time Lipschitz nonlinear NCS.
- To address sensor saturation and dead-zone input nonlinearity.
- To reduce data transmission while ensuring system stability and performance.
Main Methods:
- An improved dynamic event-triggered scheme (DETS) considering sensor saturation.
- Design of a non-fragile observer for state estimation and discrete sliding surface construction.
- Modeling system dynamics as a unified linear parameter varying (LPV) networked system with time-varying delays using a reformulated Lipschitz property.
- Development of an observer-based event-triggered SMC law.
Main Results:
- Sufficient conditions for asymptotic stability of the closed-loop system with guaranteed disturbance attenuation.
- Finite-time convergence of observer system trajectories to a region near the equilibrium point.
- Demonstrated effectiveness through two practical examples.
Conclusions:
- The proposed observer-based dynamic event-triggered SMC method effectively enhances the robustness and stability of nonlinear NCS.
- The approach successfully mitigates the impact of sensor saturation and dead-zone nonlinearities.
- The developed event-triggered scheme significantly reduces data transmission requirements.
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