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Event-triggered consensus of Markovian jumping multi-agent systems via stochastic sampling

机译:随机抽样的马尔可夫跳跃多智能体系统的事件触发共识

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摘要

This study investigates the issue of mean square consensus for multiple agents connected by a directed network. The graph of the network is supposed to have a spanning tree and each agent is taken as a Markovian jumping system. By utilising the event-triggered strategy, some sufficient conditions for consensus are presented whether the transition rates for the Markov chain being completely known or not. Furthermore, the event-triggered function designed in this study is dependent on the stochastic sampled-data from neighbouring agents. Theoretical results are provided according to the graph theory, Lyapunov functional and linear matrix inequality approach. Finally, a numerical example is given to demonstrate the effectiveness of the theoretical analysis.
机译:这项研究调查了通过有向网络连接的多个代理的均方共识问题。该网络的图假定具有生成树,并且每个代理都被视为马尔可夫跳跃系统。通过利用事件触发策略,可以为是否完全了解马尔可夫链的转换率提供一些足够的共识条件。此外,本研究中设计的事件触发功能依赖于来自相邻代理的随机采样数据。根据图论,Lyapunov函数和线性矩阵不等式方法提供了理论结果。最后,通过数值例子说明了理论分析的有效性。

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