DocumentCode :
3584323
Title :
Mixed frequency structured AR model identification
Author :
Zamani, Mahdi ; Felsenstein, Elisabeth ; Anderson, B.D.O. ; Deistler, M.
Author_Institution :
Res. Sch. of Eng., Australian Nat. Univ., Canberra, ACT, Australia
fYear :
2013
Firstpage :
1928
Lastpage :
1933
Abstract :
This paper is concerned with identifiability of an underlying high frequency multivariate stable singular AR system from mixed frequency observations. Such problems arise for instance in economics when some variables are observed monthly whereas others are observed quarterly. In particular, this paper studies stable singular AR systems where the covariance matrix associated with the vector obtained by stacking observation vector, yt, and its lags from the first lag to the p-th one (p is the order of the AR system), is also singular. To deal with this, it is assumed that the column degrees of the associated polynomial matrix are known. We consider first that there are given nonzero unequal column degrees and we show generic identifiability of the system and noise parameters. Then we extend the results to allow zero column degrees corresponding to fast components. In this case, we first show generic identifiability of the subsystem of the components with nonzero column degree. Then we show how to obtain those components of the parameter matrices of the components corresponding to zero column degree by regression.
Keywords :
autoregressive processes; covariance matrices; regression analysis; vectors; covariance matrix; economics; mixed frequency observations; mixed frequency structured AR model identification; multivariate stable singular AR system; noise parameters; nonzero unequal column degrees; parameter matrices; polynomial matrix; regression; singular AR systems; stacking observation vector; system identifiability; zero column degrees; Covariance matrices; Eigenvalues and eigenfunctions; Mathematical model; Noise; Polynomials; Vectors;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control Conference (ECC), 2013 European
Type :
conf
Filename :
6669430
Link To Document :
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