Adapting the range of validity for the Carleman linearization

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Weber, Harry; Mathis, Wolfgang: Adapting the range of validity for the Carleman linearization. In: Advances in Radio Science 14 (2016), S. 51-54. DOI: http://dx.doi.org/10.5194/ars-14-51-2016

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Sum total of downloads: 385




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Abstract: 
In this contribution, the limitations of the Carleman linearization approach are presented and discussed. The Carleman linearization transforms an ordinary nonlinear differential equation into an infinite system of linear differential equations. In order to transform the nonlinear differential equation, orthogonal polynomials which represent solutions of a Sturm–Liouville problem are used as basis. The determination of the time derivate of this basis yields an infinite dimensional linear system that depends on the considered nonlinear differential equation. The infinite linear system has the same properties as the nonlinear differential equation such as limit cycles or chaotic behavior. In general, the infinite dimensional linear system cannot be solved. Therefore, the infinite dimensional linear system has to be approximated by a finite dimensional linear system. Due to limitation of dimension the solution of the finite dimensional linear system does not represent the global behavior of the nonlinear differential equation. In fact, the accuracy of the approximation depends on the considered nonlinear system and the initial value. The idea of this contribution is to adapt the range of validity for the Carleman linearization in order to increase the accuracy of the approximation for different ranges of initial values. Instead of truncating the infinite dimensional system after a certain order a Taylor series approach is used to approximate the behavior of the nonlinear differential equation about different equilibrium points. Thus, the adapted finite linear system describes the local behavior of the solution of the nonlinear differential equation.
License of this version: CC BY 3.0 Unported
Document Type: Article
Publishing status: publishedVersion
Issue Date: 2016
Appears in Collections:Fakultät für Elektrotechnik und Informatik

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pos. country downloads
total perc.
1 image of flag of Germany Germany 289 75.06%
2 image of flag of United States United States 36 9.35%
3 image of flag of China China 8 2.08%
4 image of flag of Hong Kong Hong Kong 6 1.56%
5 image of flag of France France 6 1.56%
6 image of flag of Spain Spain 5 1.30%
7 image of flag of Canada Canada 4 1.04%
8 image of flag of Belgium Belgium 4 1.04%
9 image of flag of No geo information available No geo information available 3 0.78%
10 image of flag of India India 3 0.78%
    other countries 21 5.45%

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