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Decentralized Sliding Mode Control for Large-Scale Systems with Actuator Failures Using Dynamic Event-Triggered Adaptive Dynamic Programming

  • Yuling Liang*
  • , Xiao Mao
  • , Kun Zhang
  • , Lei Liu
  • , He Jiang
  • , Xiangmin Chen
  • *Corresponding author for this work
  • Shenyang University of Technology
  • Liaoning University of Technology
  • Shenyang Institute of Engineering
  • Shenyang Institute of Science and Technology

Research output: Contribution to journalArticlepeer-review

Abstract

This study develops a new integral sliding mode-based method to address the decentralized adaptive fault-tolerant guaranteed cost control (GCC) problem via a dynamic event-triggered (DET) adaptive dynamic programming (ADP) approach. Firstly, integral sliding mode control technology is applied to eliminate the influence of actuator faults, which can guarantee that the large-scale system states stay on the sliding mode surface. Secondly, the ADP algorithm based on DET mode is employed to improve the control performance for equivalent sliding mode surface and reduce computational and communication overhead. Meanwhile, the GCC method is introduced to ensure that the performance cost function is less than an upper bound while maintaining system stability. Then, through Lyapunov stability analysis, it is proven that the presented DET-GCC method based on ADP algorithm can guarantee that all signals are uniformly ultimately bounded. Finally, the validity of the developed approach is confirmed through the simulation results.

Original languageEnglish
Article number420
JournalActuators
Volume14
Issue number9
DOIs
StatePublished - Sep 2025

Keywords

  • actuator failures
  • adaptive dynamic programming
  • guaranteed cost control
  • integral sliding mode control

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