DocumentCode
1762082
Title
Cooperative Control of Multi-Agent Systems With Unknown State-Dependent Controlling Effects
Author
Peng Shi ; Qikun Shen
Author_Institution
Coll. of Autom., Harbin Eng. Univ., Harbin, China
Volume
12
Issue
3
fYear
2015
fDate
42186
Firstpage
827
Lastpage
834
Abstract
This paper investigates the cooperative control problem of uncertain high-order nonlinear multi-agent systems on directed graph with a fixed topology. Each follower is assumed to have an unknown controlling effect which depends on its own state. By the Nussbaum-type gain technique and the function approximation capability of neural networks, a distributed adaptive neural networks-based controller is designed for each follower in the graph such that all followers can asymptotically synchronize the leader with tracking errors being semi-globally uniform ultimate bounded. Analysis of stability and parameter convergence of the proposed algorithm are conducted based on algebraic graph theory and Lyapunov theory. Finally, a example is provided to validate the theoretical results. Note to Practitioners-Many practical applications can be modeled as uncertain high-order nonlinear multi-agent systems, whose node´ controlling effects are state-dependent. In most relevant literatures, however, it is often assumed that each node´ controlling effects are equal to one. How to cooperative control for the systems has become one main focus of control researches. Therefore, in this paper, an adaptive cooperative control scheme is proposed for such multi-agent systems. Finally, the effectiveness of the control strategies is illustrated via simulation study.
Keywords
Lyapunov methods; adaptive control; directed graphs; distributed control; function approximation; multi-agent systems; multi-robot systems; neurocontrollers; nonlinear control systems; uncertain systems; Lyapunov theory; Nussbaum-type gain technique; adaptive cooperative control scheme; algebraic graph theory; directed graph; distributed adaptive neural networks-based controller; function approximation; multi-agent systems; node controlling effects; parameter convergence; stability analysis; state-dependent control; state-dependent controlling effects; uncertain high-order nonlinear multi-agent systems; Approximation methods; Artificial neural networks; Control systems; Graph theory; Multi-agent systems; Synchronization; Cooperative control; distributed control; multi-agent systems;
fLanguage
English
Journal_Title
Automation Science and Engineering, IEEE Transactions on
Publisher
ieee
ISSN
1545-5955
Type
jour
DOI
10.1109/TASE.2015.2403261
Filename
7058448
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