DocumentCode :
1419710
Title :
Effect of conductivity uncertainties and modeling errors on EEG source localization using a 2-D model
Author :
Awada, Kassem A. ; Jackson, David R. ; Baumann, Stephen B. ; Williams, Jeffery T. ; Wilton, Donald R. ; Fink, Patrick W. ; Prasky, Brian R.
Author_Institution :
Dept. of Neurological Surg., Presbyterian Univ. Hosp., Pittsburg, PA, USA
Volume :
45
Issue :
9
fYear :
1998
Firstpage :
1135
Lastpage :
1145
Abstract :
This paper presents a sensitivity study electroencephalography-based source localization due errors in the head-tissue conductivities and to errors in modeling the conductivity variation inside the brain and scalp. The study is conducted using a two-dimensional (2-D) finite element model obtained from a magnetic resonance imaging (MRI) scan of a head cross section. The effect of uncertainty in the following tissues is studied: white matter, gray matter, cerebrospinal fluid (CSF), skull, and fat. The distribution of source location errors, assuming a single-dipole source model, is examined in detail for different dipole locations over the entire brain region. We also present a detailed analysis of the effect of conductivity on source localization for a four-layer cylinder model and a four-layer sphere model. These two simple models provide insight into how the effect of conductivity on boundary potential translates into source location errors; and also how errors in a 2-D model compare to errors in a three-dimensional model. Results presented in this paper clearly point to the following conclusion: unless the conductivities of the head tissues and the distribution of these tissues throughout the head are modeled accurately, the goal of achieving localization accuracy to within a few millimeters is unattainable.
Keywords :
brain models; electrical conductivity; electroencephalography; errors; finite element analysis; 2-D finite element model; EEG source localization; cerebrospinal fluid; conductivity uncertainties; conductivity variation; electrodiagnostics; fat; gray matter; head cross section; head-tissue conductivities; magnetic resonance imaging scan; modeling errors; scalp; skull; source location errors distribution; white matter; Brain modeling; Conductivity; Electroencephalography; Finite element methods; Magnetic heads; Magnetic resonance imaging; Position measurement; Scalp; Two dimensional displays; Uncertainty; Brain; Electric Conductivity; Electroencephalography; Finite Element Analysis; Humans; Magnetic Resonance Imaging; Models, Biological; Scalp; Sensitivity and Specificity; Skull;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.709557
Filename :
709557
Link To Document :
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