DocumentCode :
3011307
Title :
Regions of constrained maximum likelihood parameter identifiability
Author :
Chih-hsiao Lee ; Herget, C.J.
Author_Institution :
Iowa State University, Ames, Iowa
fYear :
1975
fDate :
10-12 Dec. 1975
Firstpage :
771
Lastpage :
779
Abstract :
This paper considers the parameter identification problem of general discrete-time, nonlinear, multiple-input/multiple-output dynamic systems with Gaussian-white distributed measurement errors. Knowledge of the system parameterization is assumed to be known. Regions of constrained maximum likelihood (CML) parameter identifiability are established. A computation procedure employing interval arithmetic is proposed for finding explicit regions of parameter identifiability for the case of linear systems. It is shown that if the vector of true parameters is locally CML identifiable, then with probability one, the vector of true parameters is a unique maximal point of the maximum likelihood function in the region of parameter identifiability and the CML estimation sequence will converge to the true parameters.
Keywords :
Arithmetic; Equations; Least squares methods; Measurement errors; Newton method; Nonlinear dynamical systems; Parameter estimation; Recursive estimation; Sufficient conditions; Vectors;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Decision and Control including the 14th Symposium on Adaptive Processes, 1975 IEEE Conference on
Conference_Location :
Houston, TX, USA
Type :
conf
DOI :
10.1109/CDC.1975.270609
Filename :
4045526
Link To Document :
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