DocumentCode
1353812
Title
An Efficient 3-D Eddy-Current Solver Using an Independent Impedance Method for Transcranial Magnetic Stimulation
Author
De Geeter, Nele ; Crevecoeur, Guillaume ; Dupré, Luc
Author_Institution
Dept. of Electr. Energy, Syst. & Autom., Ghent Univ., Ghent, Belgium
Volume
58
Issue
2
fYear
2011
Firstpage
310
Lastpage
320
Abstract
In many important bioelectromagnetic problem settings, eddy-current simulations are required. Examples are the reduction of eddy-current artifacts in magnetic resonance imaging and techniques, whereby the eddy currents interact with the biological system, like the alteration of the neurophysiology due to transcranial magnetic stimulation (TMS). TMS has become an important tool for the diagnosis and treatment of neurological diseases and psychiatric disorders. A widely applied method for simulating the eddy currents is the impedance method (IM). However, this method has to contend with an ill conditioned problem and consequently a long convergence time. When dealing with optimal design problems and sensitivity control, the convergence rate becomes even more crucial since the eddy-current solver needs to be evaluated in an iterative loop. Therefore, we introduce an independent IM (IIM), which improves the conditionality and speeds up the numerical convergence. This paper shows how IIM is based on IM and what are the advantages. Moreover, the method is applied to the efficient simulation of TMS. The proposed IIM achieves superior convergence properties with high time efficiency, compared to the traditional IM and is therefore a useful tool for accurate and fast TMS simulations.
Keywords
biomedical MRI; diseases; eddy currents; medical disorders; neurophysiology; transcranial magnetic stimulation; 3-D eddy-current solver; bioelectromagnetic problem; independent impedance method; magnetic resonance imaging; neurological diseases; psychiatric disorders; transcranial magnetic stimulation; Biological system modeling; Eddy currents; Equations; Impedance measurement; Mathematical model; Solid modeling; Three dimensional displays; Eddy currents; impedance method (IM); trans-cranial magnetic stimulation (TMS); volume conductor model; Algorithms; Computer Simulation; Electric Impedance; Head; Humans; Models, Biological; Reproducibility of Results; Transcranial Magnetic Stimulation;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2010.2087758
Filename
5604662
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