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PIVOŇKA, P. DOKOUPIL, J.
Originální název
Sliding Window Recursive Neural Networks Learning Algorithm and its Application on the Identification in Adaptive PID
Typ
článek ve sborníku ve WoS nebo Scopus
Jazyk
angličtina
Originální abstrakt
This article deals with the implementation of the adaptive PID controller based on the principle of forced separation imposed on the identification and system control. Original implementation of both Gauss-Newton (GN) and Levenberg-Marquardt (LM) algorithms operating in recursive learning mode over exponential-sliding finite data window for modelling of nonlinear dynamic systems is suggested. Their dynamics can be represented by a feed forward neural network. Synthesis of the PID controller is achieved using the Ziegler-Nichols method which utilizes the linearized ARX model of the neural network at the working point of the process. Benefits of the suggested algorithms are illustrated in the example simulations on the mathematical model.
Klíčová slova
Levenberg-Marquardt, Gauss-Newton, sliding-exponential window recursive algorithms, neural networks, NARX, adaptive PID controller
Autoři
PIVOŇKA, P.; DOKOUPIL, J.
Rok RIV
2010
Vydáno
15. 9. 2010
Místo
Theodor-Korner-Allee 16 D-02763 Zittau
ISBN
978-3-9812655-4-5
Kniha
17th Zittau East-West Fuzzy Colloquium
Číslo edice
1
Strany od
55
Strany do
62
Strany počet
8
BibTex
@inproceedings{BUT34626, author="Petr {Pivoňka} and Jakub {Dokoupil}", title="Sliding Window Recursive Neural Networks Learning Algorithm and its Application on the Identification in Adaptive PID", booktitle="17th Zittau East-West Fuzzy Colloquium", year="2010", number="1", pages="55--62", address="Theodor-Korner-Allee 16 D-02763 Zittau", isbn="978-3-9812655-4-5" }