Unbiased large-scale coherence mapping for simultaneously acquired EEG and fMRI data

L Marzetti, G Nolte, M G Perrucci, G L Romani, C Del Gratta

Gabriele d'Annunzio Univ., Chieti;

Conference Proceeding: 11/2007; DOI: 10.1109/NFSI-ICFBI.2007.4387712ISBN: 978-1-4244-0949-5In proceeding of: 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

Abstract

The study of large scale interactions in the brain from EEG signals is carried out in the EEG community since years. However, the validity of a large scale parameter is limited by two factors: the use of a non-neutral reference for the EEG recordings and the artifactual self-interaction between measured EEG signals introduced by volume conduction spread. In this paper, a novel approach for the study of large scale EEG coherency is proposed in which these biasing factors are eliminated. The artifactual self-interaction by volume conduction is eliminated by mapping interactions by means of the imaginary part of the complex coherency; the bias introduced by the choice of an active reference site is eliminated by applying the reference electrode standardization technique (REST) to scalp EEG recordings in order to approximately standardize the reference to a point at infinity that acts like a neutral virtual reference. The method is here applied to map coherency in the alpha band in the case of spontaneous activity EEG data acquired simultaneously to fMRI.

Source: IEEE Xplore

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Keywords

alpha band
 
applying
 
EEG community
 
EEG recordings
 
EEG signals
 
fMRI
 
imaginary part
 
infinity
 
interactions
 
large scale EEG coherency
 
large scale interactions
 
large scale parameter
 
map coherency
 
neutral virtual reference
 
non-neutral reference
 
reference electrode standardization technique
 
scalp EEG recordings
 
spontaneous activity EEG data
 
volume conduction
 
volume conduction spread