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Disturbance-observer-based adaptive neural event-triggered fault-tolerant control for uncertain nonlinear systems against sensor faults

  • Zhenhuan Wang
  • , Shanlin Liu*
  • , Ben Niu
  • , Liang Zhang
  • , Ning Zhao
  • *Corresponding author for this work
  • Northeastern University China
  • Shandong Normal University
  • Bohai University

Research output: Contribution to journalArticlepeer-review

Abstract

In this article, the adaptive event-triggered fault-tolerant control (FTC) issue of uncertain nonlinear systems suffering from sensor and actuator faults as well as external disturbances is studied. A disturbance observer (DO) is constructed to compensate for external disturbances and approximation errors generated by neural networks (NNs). Then, switching event-triggered control and command filtering techniques are introduced to balance the communication frequency and tracking performance of the controlled systems while avoiding “explosion of complexity” issue caused by iterative derivations of virtual controllers. Furthermore, compensation signals are designed to eliminate filtered errors. Finally, it is proven that the developed FTC scheme can esure that all signals are bounded and free from Zeno phenomenon. Simulation results of a spring damping mechanical system verifies the merits of the designed control algorithm.

Original languageEnglish
Pages (from-to)334-356
Number of pages23
JournalInternational Journal of General Systems
Volume54
Issue number3
DOIs
StatePublished - 2025

Keywords

  • Event-triggered control
  • command-filtered technique
  • disturbance observer
  • fault-tolerant control
  • sensor and actuator faults

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