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IEEE transaction on neural networks and learning systems, 2023-02, Vol.PP, p.1-15
2023

Details

Autor(en) / Beteiligte
Titel
Aperiodically Intermittent Event-Triggered Optimal Average Consensus for Nonlinear Multi-Agent Systems
Ist Teil von
  • IEEE transaction on neural networks and learning systems, 2023-02, Vol.PP, p.1-15
Ort / Verlag
United States: IEEE
Erscheinungsjahr
2023
Link zum Volltext
Quelle
IEEE Xplore Digital Library
Beschreibungen/Notizen
  • This article is concerned with average consensus of multi-agent systems via intermittent event-triggered strategy. First, a novel intermittent event-triggered condition is designed and the corresponding piecewise differential inequality for the condition is established. Using the established inequality, several criteria on average consensus are obtained. Second, the optimality has been investigated based on average consensus. The optimal intermittent event-triggered strategy in the sense of Nash equilibrium and corresponding local Hamilton-Jacobi-Bellman equation are derived. Third, the adaptive dynamic programming algorithm for the optimal strategy and its neural network implementation with actor-critic architecture are also given. Finally, two numerical examples are presented to show the feasibility and effectiveness of our strategies.
Sprache
Englisch
Identifikatoren
ISSN: 2162-237X
eISSN: 2162-2388
DOI: 10.1109/TNNLS.2023.3240427
Titel-ID: cdi_proquest_miscellaneous_2797149999

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