Identifying true brain interaction from EEG data using the imaginary part of coherency Article

Nolte, G, Bai, O, Wheaton, L et al. (2004). Identifying true brain interaction from EEG data using the imaginary part of coherency . 115(10), 2292-2307. 10.1016/j.clinph.2004.04.029

cited authors

  • Nolte, G; Bai, O; Wheaton, L; Mari, Z; Vorbach, S; Hallett, M

fiu authors

abstract

  • Objective: The main obstacle in interpreting EEG/MEG data in terms of brain connectivity is the fact that because of volume conduction, the activity of a single brain source can be observed in many channels. Here, we present an approach which is insensitive to false connectivity arising from volume conduction. Methods: We show that the (complex) coherency of non-interacting sources is necessarily real and, hence, the imaginary part of coherency provides an excellent candidate to study brain interactions. Although the usual magnitude and phase of coherency contain the same information as the real and imaginary parts, we argue that the Cartesian representation is far superior for studying brain interactions. The method is demonstrated for EEG measurements of voluntary finger movement. Results: We found: (a) from 5 s before to movement onset a relatively weak interaction around 20 Hz between left and right motor areas where the contralateral side leads the ipsilateral side; and (b) approximately 2-4 s after movement, a stronger interaction also at 20 Hz in the opposite direction. Conclusions: It is possible to reliably detect brain interaction during movement from EEG data. Significance: The method allows unambiguous detection of brain interaction from rhythmic EEG/MEG data. © 2004 International Federation of Clinical Neurophysiology. Published by Elsevier Ireland Ltd. All rights reserved.

publication date

  • October 1, 2004

Digital Object Identifier (DOI)

start page

  • 2292

end page

  • 2307

volume

  • 115

issue

  • 10