Parallel Generalized Finite Element Method for Magnetic Multiparticle Problems

A parallel version of the Generalized Finite Element Method is applied to multiparticle problems. The main advantage of the method is that only a regular hexahedral grid is needed; the particles do not have to be meshed and are represented by special basis functions approximating the field behavior...

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Published inHigh Performance Computing for Computational Science - VECPAR 2004 pp. 325 - 339
Main Authors Basermann, Achim, Tsukerman, Igor
Format Book Chapter Conference Proceeding
LanguageEnglish
Published Berlin, Heidelberg Springer Berlin Heidelberg 2005
Springer
SeriesLecture Notes in Computer Science
Subjects
Online AccessGet full text
ISBN9783540254249
3540254242
ISSN0302-9743
1611-3349
DOI10.1007/11403937_26

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Abstract A parallel version of the Generalized Finite Element Method is applied to multiparticle problems. The main advantage of the method is that only a regular hexahedral grid is needed; the particles do not have to be meshed and are represented by special basis functions approximating the field behavior near the particles. A general-purpose parallel Schur complement solver with incomplete LU preconditioning (A. Basermann) showed excellent performance for the varying problem size, number of processors and number of particles. In fact, the scaling of the computational time with respect to the number of processors was slightly superlinear due to cache effects. Future research plans include parallel implementation of the new Flexible Local Approximation MEthod (FLAME) that incorporates desirable local approximating functions (e.g. dipole harmonics near particles) into the difference scheme.
AbstractList A parallel version of the Generalized Finite Element Method is applied to multiparticle problems. The main advantage of the method is that only a regular hexahedral grid is needed; the particles do not have to be meshed and are represented by special basis functions approximating the field behavior near the particles. A general-purpose parallel Schur complement solver with incomplete LU preconditioning (A. Basermann) showed excellent performance for the varying problem size, number of processors and number of particles. In fact, the scaling of the computational time with respect to the number of processors was slightly superlinear due to cache effects. Future research plans include parallel implementation of the new Flexible Local Approximation MEthod (FLAME) that incorporates desirable local approximating functions (e.g. dipole harmonics near particles) into the difference scheme.
Author Tsukerman, Igor
Basermann, Achim
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  givenname: Igor
  surname: Tsukerman
  fullname: Tsukerman, Igor
  email: itsukerman@uakron.edu
  organization: Department of Electrical & Computer Engineering, The University of Akron, USA
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Hernández, Vicente
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Palma, José M. L. M.
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Keywords Harmonic
High performance
Parallel algorithm
Difference scheme
Cache memory
Grid
Special function
Distributed computing
Modeling
Function field
Finite element method
Polyhedron
Size effect
Schur complement
Preconditioning
Language English
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MeetingName High performance computing for computational science (Valencia, 28-30 june 2004, revised selected and invited papers)
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PublicationSeriesTitle Lecture Notes in Computer Science
PublicationSubtitle 6th International Conference, Valencia, Spain, June 28-30, 2004, Revised Selected and Invited Papers
PublicationTitle High Performance Computing for Computational Science - VECPAR 2004
PublicationYear 2005
Publisher Springer Berlin Heidelberg
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Snippet A parallel version of the Generalized Finite Element Method is applied to multiparticle problems. The main advantage of the method is that only a regular...
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springer
SourceType Index Database
Publisher
StartPage 325
SubjectTerms Applied sciences
Computer science; control theory; systems
Computer systems and distributed systems. User interface
Exact sciences and technology
Fast Multipole Method
Generalize Finite Element Method
Iterative Solver
Software
Sparse Linear System
Standard Finite Element Method
Title Parallel Generalized Finite Element Method for Magnetic Multiparticle Problems
URI http://link.springer.com/10.1007/11403937_26
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