DocumentCode
2192322
Title
Dipole estimation errors in EEG source localization due to not incorporating anisotropic conductivities of white matter in realistic head models
Author
Hallez, Hans ; Vanrumste, Bart ; Delputte, Steven ; Van Hese, P. ; Assecondi, Sara ; D´Asseler, Y. ; Lemahieu, Ignace
Author_Institution
Ghent Univ., Ghent
fYear
2007
fDate
12-14 Oct. 2007
Firstpage
90
Lastpage
93
Abstract
The electroencephalogram (EEG) is a useful tool in the diagnosis of epilepsy. EEG source localization can provide neurologists with an estimation of the epileptogenic zone. Many EEG source localization approaches assume head models with isotropic conductivity, while in reality the conductivity of white matter is anisotropic. The conductivity along the nerve bundle is higher than the conductivity perpendicular to the nerve bundle. Using diffusion weighted magnetic resonance images (DW-MRI), we can determine the directions the anisotropic diffusion. Using the latter we can derive the anisotropic conductivity tensor. These anisotropic conductivities can be fused with the realistic head model, derived from MR images. Using a grid of dipoles, placed in white and grey matter regions, we can compare the head model with white matter anisotropy with a head model with isotropic conductivity for the white matter compartment. As quantification measures we used the dipole location and orientation error. Results show that the location error was very small in both white and grey matter regions (<5 mm). The dipole orientation error had a mean of 3.8 degrees and 6.1 degrees in grey and white matter regions. This would indicate that the systematical error due to not incorporating anisotropic conductivities of white matter is very small.
Keywords
bioelectric phenomena; brain models; diffusion; electroencephalography; EEG source localization; anisotropic conductivity tensor; anisotropic diffusion; diffusion weighted magnetic resonance images; dipole estimation errors; electroencephalogram; epilepsy; isotropic conductivity; orientation error; realistic head model; white matter anisotropic conductivity; Anisotropic magnetoresistance; Brain modeling; Conductivity; Electroencephalography; Epilepsy; Estimation error; Magnetic heads; Magnetic resonance; Scalp; Skull;
fLanguage
English
Publisher
ieee
Conference_Titel
Noninvasive Functional Source Imaging of the Brain and Heart and the International Conference on Functional Biomedical Imaging, 2007. NFSI-ICFBI 2007. Joint Meeting of the 6th International Symposium on
Conference_Location
Hangzhou
Print_ISBN
978-1-4244-0949-5
Electronic_ISBN
978-1-4244-0949-5
Type
conf
DOI
10.1109/NFSI-ICFBI.2007.4387695
Filename
4387695
Link To Document