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  Influence of volume conductor modeling on source reconstruction in magnetoencephalography and electroencephalography

Haueisen, J., Lau, S., Flemming, L., Sonntag, H., Maess, B., & Güllmar, D. (2014). Influence of volume conductor modeling on source reconstruction in magnetoencephalography and electroencephalography. In 2014 XXXIth URSI General Assembly and Scientific Symposium (URSI GASS). Piscataway, NJ: IEEE. doi:10.1109/URSIGASS.2014.6930127.

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 Creators:
Haueisen, J.1, 2, Author
Lau, S.1, 2, 3, 4, Author
Flemming, L.2, Author
Sonntag, Hermann5, Author              
Maess, Burkhard5, Author              
Güllmar, D.6, Author
Affiliations:
1Institute of Biomedical Engineering and Informatics, Ilmenau University of Technology, Germany, ou_persistent22              
2Biomagnetic Center, Department of Neurology, University Hospital Jena, Germany, ou_persistent22              
3NeuroEngineering Lab., Dept. of Electrical and Electronic Engineering, University of Melbourne, Australia, ou_persistent22              
4Department of Medicine – St. Vincent's Hospital, University of Melbourne, Fitzroy, Australia, ou_persistent22              
5Methods and Development Unit MEG and EEG: Signal Analysis and Modelling , MPI for Human Cognitive and Brain Sciences, Max Planck Society, ou_634559              
6Medical Physics Group, Dpt. of Diagnostic & Interventional Radiology, Jena Univ. Hosp., Jena, Germany, ou_persistent22              

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 Abstract: The function and structure of the human brain is immensely complex and, at the same time, the key to understanding human behavior and many of today's prevailing diseases. In most cases, this system cannot be investigated directly, but only non-invasively from outside the head. Although several non-invasive measurement modalities are available, only magnetoencephalography (MEG) and electroencephalography (EEG) provide information with a high temporal resolution. In order to reconstruct the neuronal activity underlying measured EEG and MEG data both the forward problem (computing the electromagnetic field due to given sources) and the inverse problem (finding the best fitting sources to explain given data) have to be solved. The forward problem involves a source model and a model with the conductivities of the head. The conductivity model can be as simple as a homogeneously conducting sphere or as complex as a finite element model consisting of millions of elements, each with a different anisotropic conductivity tensor. The question is addressed how complex the employed forward model should be, and, more specifically, the influence of anisotropic volume conduction and the influence of conductivity inhomogeneities are evaluated. For this purpose high resolution finite element models of the rabbit and the human head are employed in combination with individual conductivity tensors to quantify the influence of white matter anisotropy on the solution of the forward and inverse problem in EEG and MEG. Although the current state of the art in the analysis of this influence of brain tissue anisotropy on source reconstruction does not yet allow a final conclusion, the results available indicate that the expected average source localization error due to anisotropic white matter conductivity might be within the principal accuracy limits of current inverse procedures. However, in some percent of the cases a considerably larger localization error might o- cur. In contrast, dipole orientation and dipole strength estimation are influenced significantly by anisotropy. Skull conductivity inhomogeneities such as the spongy bone structure embedded in the compact bone or surgical holes or fontanels in infants have a non-negligible effect on the EEG and MEG forward and inverse problem solution. Especially when source positions are expected to be in the vicinity of the conductivity inhomogeneity and when a large difference with respect to the skull conductivity is indicated, the modeling approach should take the inhomogeneities into account. In conclusion, models taking into account tissue anisotropy and conductivity inhomogeneities information are expected to improve source estimation procedures. Depending on the question addressed, the complexity of the forward and inverse solution approach has to be chosen.

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Language(s): eng - English
 Dates: 2014-08
 Publication Status: Published online
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: -
 Identifiers: DOI: 10.1109/URSIGASS.2014.6930127
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Title: 2014 XXXIth URSI General Assembly and Scientific Symposium (URSI GASS)
Place of Event: Beijing, China
Start-/End Date: 2014-08-16 - 2014-08-23

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Title: 2014 XXXIth URSI General Assembly and Scientific Symposium (URSI GASS)
Source Genre: Proceedings
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Publ. Info: Piscataway, NJ : IEEE
Pages: - Volume / Issue: - Sequence Number: - Start / End Page: - Identifier: ISBN: 978-1-4673-5225-3