Generalized n-Dimensional k-Order Systems: Computing the Transfer Function

George Antoniou, Marinos T. Michael

Research output: Contribution to journalConference article

Abstract

A new Generalized multi-dimensional (n-Dimensional) multi-order (k-Order), [GnDkO], linear system/model is introduced. Using this model the discrete Fourier transform (DFT) is used to compute the coefficients of the transfer function. The algorithm is straight forward and easily can be implemented. A step-by-step example illustrating the application of the algorithm is presented.

Original languageEnglish
Article number1465083
Pages (from-to)2299-2302
Number of pages4
JournalProceedings - IEEE International Symposium on Circuits and Systems
DOIs
StatePublished - 1 Dec 2005
EventIEEE International Symposium on Circuits and Systems 2005, ISCAS 2005 - Kobe, Japan
Duration: 23 May 200526 May 2005

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Transfer functions
Discrete Fourier transforms
Linear systems

Cite this

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title = "Generalized n-Dimensional k-Order Systems: Computing the Transfer Function",
abstract = "A new Generalized multi-dimensional (n-Dimensional) multi-order (k-Order), [GnDkO], linear system/model is introduced. Using this model the discrete Fourier transform (DFT) is used to compute the coefficients of the transfer function. The algorithm is straight forward and easily can be implemented. A step-by-step example illustrating the application of the algorithm is presented.",
author = "George Antoniou and Michael, {Marinos T.}",
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language = "English",
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issn = "0271-4310",
publisher = "Institute of Electrical and Electronics Engineers Inc.",

}

Generalized n-Dimensional k-Order Systems : Computing the Transfer Function. / Antoniou, George; Michael, Marinos T.

In: Proceedings - IEEE International Symposium on Circuits and Systems, 01.12.2005, p. 2299-2302.

Research output: Contribution to journalConference article

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T1 - Generalized n-Dimensional k-Order Systems

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AU - Michael, Marinos T.

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N2 - A new Generalized multi-dimensional (n-Dimensional) multi-order (k-Order), [GnDkO], linear system/model is introduced. Using this model the discrete Fourier transform (DFT) is used to compute the coefficients of the transfer function. The algorithm is straight forward and easily can be implemented. A step-by-step example illustrating the application of the algorithm is presented.

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