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Title: A comparison of two FEM-based methods for the solution of the nonlinear output regulation problem (English)
Author: Rehák, Branislav
Author: Čelikovský, Sergej
Author: Ruiz-León, Javier
Author: Orozco-Mora, Jorge
Language: English
Journal: Kybernetika
ISSN: 0023-5954
Volume: 45
Issue: 3
Year: 2009
Pages: 427-444
Summary lang: English
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Category: math
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Summary: The regulator equation is the fundamental equation whose solution must be found in order to solve the output regulation problem. It is a system of first-order partial differential equations (PDE) combined with an algebraic equation. The classical approach to its solution is to use the Taylor series with undetermined coefficients. In this contribution, another path is followed: the equation is solved using the finite-element method which is, nevertheless, suitable to solve PDE part only. This paper presents two methods to handle the algebraic condition: the first one is based on iterative minimization of a cost functional defined as the integral of the square of the algebraic expression to be equal to zero. The second method converts the algebraic-differential equation into a singularly perturbed system of partial differential equations only. Both methods are compared and the simulation results are presented including on-line control implementation to some practically motivated laboratory models. (English)
Keyword: nonlinear output regulation
Keyword: singularly perturbed equation
Keyword: gyroscope
MSC: 65N30
MSC: 70E05
MSC: 93C10
MSC: 93C20
MSC: 93C70
idZBL: Zbl 1165.93320
idMR: MR2543132
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Date available: 2010-06-02T18:40:57Z
Last updated: 2012-06-06
Stable URL: http://hdl.handle.net/10338.dmlcz/140018
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