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Prediction error identification of linear dynamic networks with rank-reduced noise
[article]
2017
arXiv
pre-print
Dynamic networks are interconnected dynamic systems with measured node signals and dynamic modules reflecting the links between the nodes. We address the problem of identifying a dynamic network with known topology, on the basis of measured signals, for the situation of additive process noise on the node signals that is spatially correlated and that is allowed to have a spectral density that is singular. A prediction error approach is followed in which all node signals in the network are
arXiv:1711.06369v1
fatcat:4eu7luydobdbtorlbnxsannjbm