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Multiresolution Frequency Domain Technique for Electromagnetics / by Mesut Gökten, Atef Elsherbeni, Ercument Arvas.

By: Gokten, Mesut, autor
Contributor(s): Elsherbeni, Atef Z., autor | Arvas, Ercument, autor
Material type: materialTypeLabelE-bookSeries: (Synthesis Lectures on Computational Electromagnetics, 1932-1716).Publisher: Cham : Springer International Publishing, 2012Edition: 1st edition 2012.Description: 1 recurso en línea (X, 124 páginas).ISBN: 9783031017148.Subject: Wavelets (Matemáticas) | Electromagnetismo -- Modelos matemáticosOnline resources: Acceso a este recurso digital (usuarios Universidad Europea de Madrid)Digital Resources
Contents:
Introduction -- Basics of the Finite Difference Method and Multiresolution Analysis -- Formulation of the Multiresolution Frequency Domain Schemes -- Application of MRFD Formulation to Closed Space Structures -- Application of MRFD Formulation to Open Space Structures -- A Multiresolution Frequency Domain Formulation for Inhomogeneous Media -- Conclusion.
Summary: In this book, a general frequency domain numerical method similar to the finite difference frequency domain (FDFD) technique is presented. The proposed method, called the multiresolution frequency domain (MRFD) technique, is based on orthogonal Battle-Lemarie and biorthogonal Cohen-Daubechies-Feauveau (CDF) wavelets. The objective of developing this new technique is to achieve a frequency domain scheme which exhibits improved computational efficiency figures compared to the traditional FDFD method: reduced memory and simulation time requirements while retaining numerical accuracy. The newly introduced MRFD scheme is successfully applied to the analysis of a number of electromagnetic problems, such as computation of resonance frequencies of one and three dimensional resonators, analysis of propagation characteristics of general guided wave structures, and electromagnetic scattering from two dimensional dielectric objects. The efficiency characteristics of MRFD techniques based on different wavelets are compared to each other and that of the FDFD method. Results indicate that the MRFD techniques provide substantial savings in terms of execution time and memory requirements, compared to the traditional FDFD method. Table of Contents: Introduction / Basics of the Finite Difference Method and Multiresolution Analysis / Formulation of the Multiresolution Frequency Domain Schemes / Application of MRFD Formulation to Closed Space Structures / Application of MRFD Formulation to Open Space Structures / A Multiresolution Frequency Domain Formulation for Inhomogeneous Media / Conclusion.
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Holdings
Item type Current library Collection Call number Status Date due Barcode Item holds
LIBRO-E NO PRÉSTAMO LIBRO-E NO PRÉSTAMO Madrid Digital Acceso Electrónico (UEM) Ciencias e Ingeniería QC760.4.M37 2012 EB (Browse shelf(Opens below)) Acceso electrónico eBook.01112401
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Introduction -- Basics of the Finite Difference Method and Multiresolution Analysis -- Formulation of the Multiresolution Frequency Domain Schemes -- Application of MRFD Formulation to Closed Space Structures -- Application of MRFD Formulation to Open Space Structures -- A Multiresolution Frequency Domain Formulation for Inhomogeneous Media -- Conclusion.

In this book, a general frequency domain numerical method similar to the finite difference frequency domain (FDFD) technique is presented. The proposed method, called the multiresolution frequency domain (MRFD) technique, is based on orthogonal Battle-Lemarie and biorthogonal Cohen-Daubechies-Feauveau (CDF) wavelets. The objective of developing this new technique is to achieve a frequency domain scheme which exhibits improved computational efficiency figures compared to the traditional FDFD method: reduced memory and simulation time requirements while retaining numerical accuracy. The newly introduced MRFD scheme is successfully applied to the analysis of a number of electromagnetic problems, such as computation of resonance frequencies of one and three dimensional resonators, analysis of propagation characteristics of general guided wave structures, and electromagnetic scattering from two dimensional dielectric objects. The efficiency characteristics of MRFD techniques based on different wavelets are compared to each other and that of the FDFD method. Results indicate that the MRFD techniques provide substantial savings in terms of execution time and memory requirements, compared to the traditional FDFD method. Table of Contents: Introduction / Basics of the Finite Difference Method and Multiresolution Analysis / Formulation of the Multiresolution Frequency Domain Schemes / Application of MRFD Formulation to Closed Space Structures / Application of MRFD Formulation to Open Space Structures / A Multiresolution Frequency Domain Formulation for Inhomogeneous Media / Conclusion.

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