DocumentCode
1124155
Title
Spatio-temporal EEG source localization using a three-dimensional subspace FINE approach in a realistic geometry inhomogeneous head model
Author
Lei Ding ; Bin He
Author_Institution
Dept. of Biomed. Eng., Minnesota Univ., Minneapolis, MN
Volume
53
Issue
9
fYear
2006
Firstpage
1732
Lastpage
1739
Abstract
The subspace source localization approach, i.e., first principle vectors (FINE), is able to enhance the spatial resolvability and localization accuracy for closely-spaced neural sources from EEG and MEG measurements. Computer simulations were conducted to evaluate the performance of the FINE algorithm in an inhomogeneous realistic geometry head model under a variety of conditions. The source localization abilities of FINE were examined at different cortical regions and at different depths. The present computer simulation results indicate that FINE has enhanced source localization capability, as compared with MUSIC and RAP-MUSIC, when sources are closely spaced, highly noise-contaminated, or inter-correlated. The source localization accuracy of FINE is better, for closely-spaced sources, than MUSIC at various noise levels, i.e., signal-to-noise ratio (SNR) from 6 dB to 16 dB, and RAP-MUSIC at relatively low noise levels, i.e., 6 dB to 12 dB. The FINE approach has been further applied to localize brain sources of motor potentials, obtained during the finger tapping tasks in a human subject. The experimental results suggest that the detailed neural activity distribution could be revealed by FINE. The present study suggests that FINE provides enhanced performance in localizing multiple closely spaced, and inter-correlated sources under low SNR, and may become an important alternative to brain source localization from EEG or MEG
Keywords
bioelectric potentials; electroencephalography; magnetoencephalography; medical signal processing; neurophysiology; optimisation; spatiotemporal phenomena; vectors; MEG; MUSIC; RAP-MUSIC; brain sources; closely-spaced neural sources; cortical regions; finger tapping tasks; first principle vectors; localization accuracy; motor potentials; neural activity distribution; realistic geometry inhomogeneous head model; spatial resolvability; spatiotemporal EEG source localization; three-dimensional subspace FINE approach; Brain modeling; Computational geometry; Computer simulation; Electroencephalography; Fingers; Multiple signal classification; Noise level; Signal to noise ratio; Solid modeling; Spatial resolution; Brain mapping; EEG; FINE; MEG; MUSIC; electrophysiological neuroimaging; inverse problem; source localization; subspace; Algorithms; Anisotropy; Brain; Brain Mapping; Computer Simulation; Diagnosis, Computer-Assisted; Electroencephalography; Evoked Potentials, Motor; Head; Humans; Models, Neurological;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2006.878118
Filename
1673615
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