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Average State Estimation in Large-Scale Clustered Network Systems

机译:大规模集群网络系统中的平均状态估计

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摘要

For the monitoring of large-scale clustered network systems (CNS), it suffices in many applications to know the aggregated states of given clusters of nodes. This article provides necessary and sufficient conditions such that the average states of the prespecified clusters can be reconstructed and/or asymptotically estimated. To achieve computational tractability, the notions of average observability and average detectability of the CNS are defined via the projected network system, which is of tractable dimension and is obtained by aggregating the clusters. The corresponding necessary and sufficient conditions of average observability and average detectability are provided and interpreted through the underlying structure of the induced subgraphs and the induced bipartite subgraphs, which capture the intracluster and intercluster topologies of the CNS, respectively. Moreover, the design of an average state observer, whose dimension is minimum and equals the number of clusters in the CNS, is presented.
机译:对于监视大规模集群网络系统(CNS),许多应用程序足以了解给定节点集群的聚合状态。本文提供了必要和充分的条件,以便可以重建预定簇的平均状态和/或渐近估计。为了实现计算途径,通过投影网络系统定义了CNS的平均可观察性和平均可检测性的概念,该网络系统是由易解的尺寸的并且通过聚合簇而获得。通过诱导的子图的底层结构和诱导的二分亚图的潜在结构提供和解释相应的平均可观察性和平均可检测性的必要性和充分的可检测性条件,其分别捕获CNS的内部簇和混合物拓扑。此外,呈现了平均状态观察者的设计,其维度最小,并且等于CNS中的簇数。

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