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Neural-networks-based distributed output regulation of multi-agent systems with nonlinear dynamics

机译:基于神经网络的具有非线性动力学的多智能体系统分布式输出调节

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This paper deals with the output regulation problem of the nonlinear multi-agent systems based on dynamic neural networks. Assume that the models of following agents in the considered systems are unknown, and the state of the leader agent is not completely measurable for each follower. By employing Lyapunov approach, a dynamic neural network is established to approximate the systems of the following agents. Based on the dynamic neural network, a state feedback control law is designed guaranteeing the following agents can asymptotically track the reference generated by an exosystem. The exosystem is regarded as the active leaders in the multi-agent systems. A numerical simulation example is provided to demonstrate the effectiveness of the obtained results.
机译:本文研究了基于动态神经网络的非线性多智能体系统的输出调节问题。假设所考虑系统中跟随代理的模型是未知的,并且对于每个跟随者,领导者代理的状态不是完全可测量的。通过使用Lyapunov方法,建立了动态​​神经网络来近似以下智能体的系统。基于动态神经网络,设计了一种状态反馈控制律,以确保以下代理可以渐近跟踪外部系统生成的参考。外系统被认为是多主体系统中的活跃领导者。提供了一个数值仿真示例来证明所获得结果的有效性。

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