Publication | Closed Access
Filtered generalized iterative parameter identification for equation‐error autoregressive models based on the filtering identification idea
96
Citations
120
References
2024
Year
Parameter EstimationEngineeringFiltering Identification IdeaIterative Parameter IdentificationState EstimationNonlinear System IdentificationParameter IdentificationData ScienceSystems EngineeringIterative SearchEstimation TheoryStatisticsForecastingSystem IdentificationSignal ProcessingFiltered GeneralizedRobust ModelingProcess ControlEquation‐error Autoregressive ModelsIterative Identification Method
Summary By using the collected batch data and the iterative search, and based on the filtering identification idea, this article investigates and proposes a filtered multi‐innovation generalized projection‐based iterative identification method, a filtered generalized gradient‐based iterative identification method, a filtered generalized least squares‐based iterative identification method, a filtered multi‐innovation generalized gradient‐based iterative identification method and a filtered multi‐innovation generalized least squares‐based iterative identification method for equation‐error autoregressive systems described by the equation‐error autoregressive models. These filtered generalized iterative identification methods can be extended to other linear and nonlinear scalar and multivariable stochastic systems with colored noises.
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