DocumentCode :
1843331
Title :
A new approach to system identification and parameter tuning with multiple model adaptive estimators
Author :
Martins, Joao Carlos ; Caeiro, José Jasnau ; Sousa, Leonel A.
Author_Institution :
ESTIG-IPBeja/INESC-ID, Beja, Portugal
fYear :
2011
fDate :
4-6 Sept. 2011
Firstpage :
72
Lastpage :
77
Abstract :
Multiple model adaptive estimators have been used as a standard technique in system identification and systems state estimation. In its classical application, this method picks up the most probable model from a fixed set of pre-established models. This paper presents a new method, relying on multiple model adaptive estimators, that defines a set of models, with cardinality dependent on the number of unknown system parameters, and a strategy to successively update the parameters´ values to approximate the system under identification. The method starts with a model for the unknown system and a suitable range of values for each unknown parameter, that can be chosen a priori or generated automatically, and from there a constellation of suitable models is constructed. In a first phase, a search is made in the parameters´ space to seek the region where the true model´s parameters dwell, and after that, the region´s area is consecutively shrunk and the parameters are updated. Due to the adaptive nature of the constellation, for time-variant systems, when the system´s parameters change the algorithm parameters can be reinitialized to estimate the new systems parameters.
Keywords :
Kalman filters; adaptive estimation; parameter estimation; state estimation; time-varying systems; Kalman filter; multiple model adaptive estimators; parameter tuning; system identification; system state estimation; time-variant systems; Adaptation models; Adaptive systems; Kalman filters; Mathematical model; Neurons; Noise;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Image and Signal Processing and Analysis (ISPA), 2011 7th International Symposium on
Conference_Location :
Dubrovnik
ISSN :
1845-5921
Print_ISBN :
978-1-4577-0841-1
Electronic_ISBN :
1845-5921
Type :
conf
Filename :
6046583
Link To Document :
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