Analysis of Transcranial Magnetic Stimulation Based on the Surface Integral Equation Formulation

被引:31
作者
Cvetkovic, Mario [1 ]
Poljak, Dragan [1 ]
Haueisen, Jens [2 ,3 ]
机构
[1] Univ Split, Fac Elect Engn Mech Engn & Naval Architecture, Split 21000, Croatia
[2] Ilmenau Univ Technol, Inst Biomed Engn & Informat, Ilmenau, Germany
[3] Jena Univ Hosp, Biomagnet Ctr, Jena, Germany
关键词
Electromagnetic model; numerical solution; surface integral equation (SIE) approach; transcranial magnetic stimulation (TMS); INDUCED ELECTRIC-FIELD; MOTOR CORTEX; ELECTROMAGNETIC SCATTERING; DIELECTRIC-PROPERTIES; BIOLOGICAL TISSUES; BRAIN; MODELS; SIMULATION; CONDUCTIVITY; CURRENTS;
D O I
10.1109/TBME.2015.2393557
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Goal: The aim of this paper is to provide a rigorous model and, hence, a more accurate description of the transcranial magnetic stimulation (TMS) induced fields and currents, respectively, by taking into account the inductive and capacitive effects, as well as the propagation effects, often being neglected when using quasi-static approximation. Methods: The formulation is based on the surface integral equation (SIE) approach. The model of a lossy homogeneous brain has been derived from the equivalence theorem and using the appropriate boundary conditions for the electric field. The numerical solution of the SIE has been carried out using the method of moments. Results: Numerical results for the induced electric field, electric current density, and the magnetic flux density distribution inside the human brain, presented for three typical TMS coils, are in a good agreement with some previous analysis as well as to the results obtained by analytical approach. Conclusion: The future work should be related to the development of a more detailed geometrical model of the human brain that will take into account complex cortical columnar structures, as well as some additional brain tissues. Significance: To the best of authors knowledge, similar approach in modeling TMS has not been previously reported, albeit integral equation methods are seeing a revival in computational electromagnetics community.
引用
收藏
页码:1535 / 1545
页数:11
相关论文
共 49 条
[1]  
[Anonymous], 1968, HUMAN BRAIN FIGURES
[2]  
BARKER AT, 1985, LANCET, V1, P1106
[3]   The electrical conductivity of human cerebrospinal fluid at body temperature [J].
Baumann, SB ;
Wozny, DR ;
Kelly, SK ;
Meno, FM .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1997, 44 (03) :220-223
[4]   Analysis of the quasi-static approximation for calculating potentials generated by neural stimulation [J].
Bossetti, Chad A. ;
Birdno, Merrill J. ;
Grill, Warren M. .
JOURNAL OF NEURAL ENGINEERING, 2008, 5 (01) :44-53
[5]   ANALYSIS OF THE DISTRIBUTION OF CURRENTS INDUCED BY A CHANGING MAGNETIC-FIELD IN A VOLUME CONDUCTOR [J].
BRANSTON, NM ;
TOFTS, PS .
PHYSICS IN MEDICINE AND BIOLOGY, 1991, 36 (02) :161-168
[6]   Tissue and electrode capacitance reduce neural activation volumes during deep brain stimulation [J].
Butson, CR ;
McIntyre, CC .
CLINICAL NEUROPHYSIOLOGY, 2005, 116 (10) :2490-2500
[7]   Using Increased Structural Detail of the Cortex to Improve the Accuracy of Modeling the Effects of Transcranial Magnetic Stimulation on Neocortical Activation [J].
Chen, Ming ;
Mogul, David Jeffery .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2010, 57 (05) :1216-1226
[8]  
Chew W. C., 2009, Integral Equation Methods for Electromagnetic and Elastic Waves
[9]  
Cignoni Paolo, 2008, EUR IT CHAPT C SAL I, P129
[10]   EFFECTS OF COIL DESIGN ON DELIVERY OF FOCAL MAGNETIC STIMULATION - TECHNICAL CONSIDERATIONS [J].
COHEN, LG ;
ROTH, BJ ;
NILSSON, J ;
DANG, N ;
PANIZZA, M ;
BANDINELLI, S ;
FRIAUF, W ;
HALLETT, M .
ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1990, 75 (04) :350-357