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Event-Triggered Adaptive Control for Multi-Agent Systems Utilizing Historical Information
by
Liu, Xinglan
, Wang, Hongmei
, Fan, Quan-Yong
in
Adaptive control
/ Analysis
/ Brain research
/ Case studies
/ command filter
/ Communication
/ Controllers
/ event-triggered mechanism
/ historical information
/ multi-agent systems
/ Multiagent systems
/ Neural networks
/ Nonlinear systems
/ Nonlinearity
2026
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Event-Triggered Adaptive Control for Multi-Agent Systems Utilizing Historical Information
by
Liu, Xinglan
, Wang, Hongmei
, Fan, Quan-Yong
in
Adaptive control
/ Analysis
/ Brain research
/ Case studies
/ command filter
/ Communication
/ Controllers
/ event-triggered mechanism
/ historical information
/ multi-agent systems
/ Multiagent systems
/ Neural networks
/ Nonlinear systems
/ Nonlinearity
2026
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Do you wish to request the book?
Event-Triggered Adaptive Control for Multi-Agent Systems Utilizing Historical Information
by
Liu, Xinglan
, Wang, Hongmei
, Fan, Quan-Yong
in
Adaptive control
/ Analysis
/ Brain research
/ Case studies
/ command filter
/ Communication
/ Controllers
/ event-triggered mechanism
/ historical information
/ multi-agent systems
/ Multiagent systems
/ Neural networks
/ Nonlinear systems
/ Nonlinearity
2026
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Event-Triggered Adaptive Control for Multi-Agent Systems Utilizing Historical Information
Journal Article
Event-Triggered Adaptive Control for Multi-Agent Systems Utilizing Historical Information
2026
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Overview
In this study, an adaptive event-driven coordination paradigm is proposed for achieving consensus in nonlinear multi-agent systems (MASs) over directed networks. First, a newly dynamic event-triggered mechanism with single-point historical information is introduced to minimize unnecessary network communication. And a more general form of an event triggering mechanism with moving window historical information is designed for further saving network resources. Considering that the use of historical information over a long period of time may cause deviations, an event-triggered mechanism that can adjust the maximum memory length is proposed in this work to minimize unnecessary network communication. Secondly, the unknown nonlinearities in the MAS model are addressed using the universal approximation capability of neural networks. Then, a methodology for distributed adaptive control under event-triggered mechanisms is introduced leveraging the memory-based command-filtered backstepping methodology, and the proposed scheme resolves the complexity explosion problem. Finally, a case study is conducted to validate the feasibility of the proposed method.
Publisher
MDPI AG
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