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首页> 外文期刊>Control of Network Systems, IEEE Transactions on >Time-Scale Separation in Networks: State-Dependent Graphs and Consensus Tracking
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Time-Scale Separation in Networks: State-Dependent Graphs and Consensus Tracking

机译:网络中的时标分离:状态相关图和共识跟踪

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摘要

This paper studies the coupled dynamics spanning multiple time-scales that arise in networked systems. Two particular cases are examined. In the first case, agents evolve according to the consensus dynamics over state-dependent graphs whose weight dynamics are slow varying. In the second, the consensus dynamics are coupled to rapidly evolving nonlinear node dynamics. In both instances, graph-based guarantees are provided that certify the existence of a separation principle across time scales. Further, the effect of the network's structure on the composite multiple time-scale system's stability and basin of attraction is quantified in each case. As illustrated by specific numeric examples, these results provide designers with a network-centric approach to improve the performance and stability of such coupled systems.
机译:本文研究跨越联网系统中出现的多个时间尺度的耦合动力学。研究了两种特殊情况。在第一种情况下,代理根据权重动态变化缓慢的状态相关图根据共识动态演化。第二,共识动力学与快速发展的非线性节点动力学耦合。在这两种情况下,都提供了基于图的保证,以证明跨时间标度存在分离原理。此外,在每种情况下都可以量化网络结构对复合多时标系统的稳定性和吸引盆的影响。如特定数字示例所示,这些结果为设计人员提供了以网络为中心的方法,以改善此类耦合系统的性能和稳定性。

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