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Nonparametric identification of nonlinear dynamic systems

Produktform: Buch / Einband - flex.(Paperback)

A nonparametric identification method for highly nonlinear systems is presented that is able to reconstruct the underlying nonlinearities without a priori knowledge of the describing nonlinear functions. The approach is based on nonlinear Kalman Filter algorithms using the well-known state augmentation technique that turns the filter into a dual state and parameter estimator, of which an extension towards nonparametric identification is proposed in the present work.weiterlesen

Sprache(n): Englisch

ISBN: 978-3-7315-0834-2 / 978-3731508342 / 9783731508342

Verlag: KIT Scientific Publishing

Erscheinungsdatum: 28.11.2018

Seiten: 241

Autor(en): Gábor Kenderi

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