Validation of a 3D reconstruction algorithm for EIT of human brain function in a realistic head-shaped tank
- 1 February 2001
- journal article
- research article
- Published by IOP Publishing in Physiological Measurement
- Vol. 22 (1) , 177-185
- https://doi.org/10.1088/0967-3334/22/1/321
Abstract
Previous work has demonstrated that electrical impedance tomography can be used to image human brain activity during evoked responses, but two-thirds of the reconstructed images fail to localize an impedance change to the expected stimulated cortical area. The localization failure may be caused by modelling the head as a homogenous sphere in the reconstruction algorithm. This assumption may lead to errors when used to reconstruct data obtained from the human head. In this study a 3D reconstruction algorithm, based on a model of the head as a homogenous sphere, was characterized by simulating the algorithm model, the head shape and the presence of the skull in saline-filled tanks. EIT images of a sponge, 14 cm3 volume with a resistivity contrast of 12%, were acquired in three different positions in tanks filled with 0.2% saline. In a hemispherical tank, 19 cm in diameter, the sponge was localized to within 3.4-10.7% of the tank diameter. In a head-shaped tank, the errors were between 3.1 and 13.3% without a skull and between 10.3 and 18.7% when a real human skull was present. A significant increase in localization error therefore occurs if an algorithm based on a homogeneous sphere is used on data acquired from a head-shaped tank. The increased error is due to the presence of the skull, as no significant increase in error occurred if a head-shaped tank was used without the skull present, compared to the localization error within the hemispherical tank. The error due to the skull significantly shifted the impedance change within the skull towards the centre of the image. Although the increased localization error due to the skull is not sufficient to explain the localization errors of up to 50% of the image diameter present in the images of some human subjects, the future use of a realistic head model in the reconstruction algorithm is likely to reduce the localization error in the human images due to the presence of the skull.Keywords
This publication has 11 references indexed in Scilit:
- Two-dimensional finite element modelling of the neonatal headPhysiological Measurement, 2000
- Imaging of physiologically evoked responses by electrical impedance tomography with cortical electrodes in the anaesthetized rabbitPhysiological Measurement, 1996
- Imaging of cortical spreading depression by EIT: implications for localization of epileptic fociPhysiological Measurement, 1994
- Image reconstruction using non-adjacent drive configurations (electric impedance tomography)Physiological Measurement, 1994
- Thickness and resistivity variations over the upper surface of the human skullBrain Topography, 1993
- Back-projection distortions in applied potential tomography images due to non-uniform reference conductivity distributionsClinical Physics and Physiological Measurement, 1992
- Detection of cerebral ischaemia in the anaesthetised rat by impedance measurement with scalp electrodes: implications for non-invasive imaging of stroke by electrical impedance tomographyClinical Physics and Physiological Measurement, 1992
- Messung der elektrischen Impedanz von Organen — Apparative Ausrüstung für Forschung und klinische Anwendung - Measurement of Electrical Impedance in Organs – Measuring Equipment for Research and Clinical ApplicationsBiomedizinische Technik/Biomedical Engineering, 1991
- The Sheffield data collection systemClinical Physics and Physiological Measurement, 1987
- The specific resistance of biological material—A compendium of data for the biomedical engineer and physiologistMedical & Biological Engineering & Computing, 1967