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首页> 外文期刊>Neural Networks and Learning Systems, IEEE Transactions on >Distributed Neural Network Control for Adaptive Synchronization of Uncertain Dynamical Multiagent Systems
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Distributed Neural Network Control for Adaptive Synchronization of Uncertain Dynamical Multiagent Systems

机译:不确定动态多智能体系统自适应同步的分布式神经网络控制

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摘要

This paper addresses the leader–follower synchronization problem of uncertain dynamical multiagent systems with nonlinear dynamics. Distributed adaptive synchronization controllers are proposed based on the state information of neighboring agents. The control design is developed for both undirected and directed communication topologies without requiring the accurate model of each agent. This result is further extended to the output feedback case where a neighborhood observer is proposed based on relative output information of neighboring agents. Then, distributed observer-based synchronization controllers are derived and a parameter-dependent Riccati inequality is employed to prove the stability. This design has a favorable decouple property between the observer and the controller designs for nonlinear multiagent systems. For both cases, the developed controllers guarantee that the state of each agent synchronizes to that of the leader with bounded residual errors. Two illustrative examples validate the efficacy of the proposed methods.
机译:本文解决了具有非线性动力学的不确定动态多智能体系统的前导跟随同步问题。基于邻居代理的状态信息,提出了分布式自适应同步控制器。该控制设计针对无向和有向的通信拓扑而开发,不需要每个代理的精确模型。该结果进一步扩展到基于邻近代理的相对输出信息提出邻域观察者的输出反馈情况。然后,推导了基于分布式观测器的同步控制器,并采用了依赖于参数的Riccati不等式证明了稳定性。对于非线性多主体系统,此设计在观察者和控制器设计之间具有良好的解耦特性。对于这两种情况,开发的控制器均确保每个座席的状态与具有有限残差的领导者的状态同步。两个说明性例子验证了所提出方法的有效性。

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