The influence of conductivity changes in boundary element compartments on the forward and inverse problem in electroencephalography and magnetoencephalography

被引:22
作者
Haueisen, J
Böttner, A
Nowak, H
Brauer, H
Weiller, C
机构
[1] Univ Jena, Biomagnet Zentrum, Neurol Klin, D-7740 Jena, Germany
[2] Tech Univ Ilmenau, Inst Allgemeine & Theoret Elektrotech, D-98684 Ilmenau, Germany
来源
BIOMEDIZINISCHE TECHNIK | 1999年 / 44卷 / 06期
关键词
conductivity; boundary element method; BEM; EEG; MEG;
D O I
10.1515/bmte.1999.44.6.150
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Source localization based on magnetoencephalographic and electroencephalographic data requires knowledge of the conductivity values of the head. The aim of this paper is to examine the influence of compartment conductivity changes on the neuromagnetic field and the electric scalp potential for the widely used three compartment boundary element models. Both the analysis of measurement data and the simulations with dipoles distributed in the brain produced two significant results. First, we found the electric potentials to be approximately one order of magnitude more sensitive to conductivity changes than the magnetic fields. This was valid for the field and potential topology (and hence dipole localization), and for the amplitude (and hence dipole strength). Second, changes in brain compartment conductivity yield the lowest change in the electric potentials topology (and hence dipole localization), but a very strong change in the amplitude (and hence in the dipole strength). We conclude that for the magnetic fields the influence of compartment conductivity changes is not important in terms of dipole localization and strength estimation. For the electric potentials however, both dipole localization and strength estimation are significantly influenced by the compartment conductivity.
引用
收藏
页码:150 / 157
页数:8
相关论文
共 19 条
[1]   HUMAN CORTICAL POTENTIALS-EVOKED BY STIMULATION OF THE MEDIAN NERVE .1. CYTOARCHITECTONIC AREAS GENERATING SHORT-LATENCY ACTIVITY [J].
ALLISON, T ;
MCCARTHY, G ;
WOOD, CC ;
DARCEY, TM ;
SPENCER, DD ;
WILLIAMSON, PD .
JOURNAL OF NEUROPHYSIOLOGY, 1989, 62 (03) :694-710
[2]   LOCATION OF SOURCES OF EVOKED SCALP POTENTIALS - CORRECTIONS FOR SKULL AND SCALP THICKNESSES [J].
ARY, JP ;
KLEIN, SA ;
FENDER, DH .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1981, 28 (06) :447-452
[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]  
BURGHOFF M, 1996, BIOMED TECH, V41, P302
[5]   ECCENTRIC SPHERES MODELS OF THE HEAD [J].
CUFFIN, BN .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1991, 38 (09) :871-878
[6]   An improved boundary element method for realistic volume-conductor modeling [J].
Fuchs, M ;
Drenckhahn, R ;
Wischmann, HA ;
Wagner, M .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1998, 45 (08) :980-997
[7]   Somatic evoked high-frequency magnetic oscillations reflect activity of inhibitory interneurons in the human somatosensory cortex [J].
Hashimoto, I ;
Mashiko, T ;
Imada, T .
EVOKED POTENTIALS-ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1996, 100 (03) :189-203
[8]   ON THE INFLUENCE OF VOLUME CURRENTS AND EXTENDED SOURCES ON NEUROMAGNETIC FIELDS - A SIMULATION STUDY [J].
HAUEISEN, J ;
RAMON, C ;
CZAPSKI, P ;
EISELT, M .
ANNALS OF BIOMEDICAL ENGINEERING, 1995, 23 (06) :728-739
[9]   Influence of tissue resistivities on neuromagnetic fields and electric potentials studied with a finite element model of the head [J].
Haueisen, J ;
Ramon, C ;
Eiselt, M ;
Brauer, H ;
Nowak, H .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1997, 44 (08) :727-735
[10]   The influence of boundary element discretization on the forward and inverse problem in electroencephalography and magnetoencephalography [J].
Haueisen, J ;
Bottner, A ;
Funke, M ;
Brauer, H ;
Nowak, H .
BIOMEDIZINISCHE TECHNIK, 1997, 42 (09) :240-248