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Finite-time consensus protocols for networks of dynamic agents by terminal iterative learning

机译:通过终端迭代学习的动态代理网络有限时间共识协议

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This paper aims to address finite-time consensus problems for multi-agent systems under the iterative learning control framework. Distributed iterative learning protocols are presented, which adopt the terminal laws to update the control input and are offline feedforward design approaches. It is shown that iterative learning protocols can guarantee all agents in a directed graph to reach the finite-time consensus. Furthermore, the multi-agent systems can be enabled to achieve a finite-time consensus at any desired terminal state/output if iterative learning protocols can be improved by introducing the desired terminal state/output to a portion of agents. Simulation results show that iterative learning protocols can effectively accomplish finite-time consensus objectives for both first-order and higher order multi-agent systems.
机译:本文旨在解决迭代学习控制框架下多智能体系统的有限时间共识问题。提出了分布式迭代学习协议,该协议采用终端定律更新控制输入,是离线前馈设计方法。结果表明,迭代学习协议可以保证有向图中的所有主体都达到有限时间共识。此外,如果可以通过将期望的终端状态/输出引入代理的一部分来改善迭代学习协议,则多代理系统可以在任何期望的终端状态/输出处实现有限时间共识。仿真结果表明,迭代学习协议可以有效地实现一阶和高阶多智能体系统的有限时间共识目标。

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