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AuthorChowdhury, Muhammad E.H.
AuthorKhandakar, Amith
AuthorMullinger, Karen J.
AuthorAl-Emadi, Nasser
AuthorBowtell, Richard
Available date2020-08-18T08:34:16Z
Publication Date2019
Publication NameFrontiers in Neuroscience
ResourceScopus
ISSN16624548
URIhttp://dx.doi.org/10.3389/fnins.2019.00690
URIhttp://hdl.handle.net/10576/15591
AbstractElectroencephalography (EEG) data recorded during simultaneous EEG-fMRI experiments are contaminated by large gradient artifacts (GA). The amplitude of the GA depends on the area of the wire loops formed by the EEG leads, as well as on the rate of switching of the magnetic field gradients, which are essential for MR imaging. Average artifact subtraction (AAS), the most commonly used method for GA correction, relies on the EEG amplifier having a large enough dynamic range to characterize the artifact voltages. Low-pass filtering (250 Hz cut-off) is generally used to attenuate the high-frequency voltage fluctuations of the GA, but even with this precaution channel saturation can occur, particularly during acquisition of high spatial resolution MRI data. Previous work has shown that the ribbon cable, used to connect the EEG cap and amplifier, makes a significant contribution to the GA, since the cable geometry produces large effective wire-loop areas. However, by appropriately connecting the wires of the ribbon cable to the EEG cap it should be possible to minimize the overall range and root mean square (RMS) amplitude of the GA by producing partial cancelation of the cap and cable contributions. Here by modifying the connections of the EEG cap to a 1 m ribbon cable we were able to reduce the range of the GA for a high-resolution coronal echo planar Imaging (EPI) acquisition by a factor of ? 1.6 and by a factor of ? 1.15 for a standard axial EPI acquisition. These changes could potentially be translated into a reduction in the required dynamic range, an increase in the EEG bandwidth or an increase in the achievable image resolution without saturation, all of which could be beneficially exploited in EEG-fMRI studies. The re-wiring could also prevent the system from saturating when small subject movements occur using the standard recording bandwidth. - 2007 - 2019 Frontiers Media S.A.
SponsorThis work was partially funded by the EPSRC Grant EP/J006823/1, a Commonwealth Scholarship awarded to MC and a UREP Grant UREP23-027-2-012 funded by the QNRF. The publication of this manuscript was funded by the Qatar National Library. The experimental works reported here were conducted by the first author during his postdoctoral research at Sir Peter Mansfield Imaging Center (SPMIC), University of Nottingham, United Kingdom.
Languageen
PublisherFrontiers Media S.A.
SubjectEEG artifact correction
EEG cap-cabling configuration
gradient artifact
ribbon cable
simultaneous EEG-fMRI
TitleSimultaneous EEG-fMRI: Evaluating the effect of the EEG cap-cabling configuration on the gradient artifact
TypeArticle
Issue Number7
Volume Number13
dc.accessType Abstract Only


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