Iterative learning control for multi-agent systems with impulsive consensus tracking

In this paper, we adopt D-type and PD-type learning laws with the initial state of iteration to achieve uniform tracking problem of multi-agent systems subjected to impulsive input. For the multi-agent system with impulse, we show that all agents are driven to achieve a given asymptotical consensus...

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Veröffentlicht in:Nonlinear analysis (Vilnius, Lithuania) Lithuania), 2021-01, Vol.26 (1), p.130-150
Hauptverfasser: Cao, Xiaokai, Fečkan, Michal, Shen, Dong, Wang, JinRong
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Sprache:eng
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Zusammenfassung:In this paper, we adopt D-type and PD-type learning laws with the initial state of iteration to achieve uniform tracking problem of multi-agent systems subjected to impulsive input. For the multi-agent system with impulse, we show that all agents are driven to achieve a given asymptotical consensus as the iteration number increases via the proposed learning laws if the virtual leader has a path to any follower agent. Finally, an example is illustrated to verify the effectiveness by tracking a continuous or piecewise continuous desired trajectory.
ISSN:1392-5113
2335-8963
DOI:10.15388/namc.2021.26.20981