Invisible Base Electrode Coordinates Approximation for Simultaneous SPECT and EEG Data Visualization
This work was performed as part of a larger research concerning the feasibility of improving the localization of epileptic foci, as compared to the standard SPECT examination, by applying the technique of EEG mapping. The presented study extends our previous work on the development of a method for s...
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Published in | Measurement science review Vol. 14; no. 2; pp. 109 - 116 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
Published |
Bratislava
De Gruyter Open
01.04.2014
De Gruyter Poland Sciendo |
Subjects | |
Online Access | Get full text |
ISSN | 1335-8871 1335-8871 |
DOI | 10.2478/msr-2014-0015 |
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Abstract | This work was performed as part of a larger research concerning the feasibility of improving the localization of epileptic foci, as compared to the standard SPECT examination, by applying the technique of EEG mapping. The presented study extends our previous work on the development of a method for superposition of SPECT images and EEG 3D maps when these two examinations are performed simultaneously. Due to the lack of anatomical data in SPECT images it is a much more difficult task than in the case of MRI/EEG study where electrodes are visible in morphological images. Using the appropriate dose of radioisotope we mark five base electrodes to make them visible in the SPECT image and then approximate the coordinates of the remaining electrodes using properties of the 10-20 electrode placement system and the proposed nine-ellipses model. This allows computing a sequence of 3D EEG maps spanning on all electrodes. It happens, however, that not all five base electrodes can be reliably identified in SPECT data. The aim of the current study was to develop a method for determining the coordinates of base electrode(s) missing in the SPECT image. The algorithm for coordinates approximation has been developed and was tested on data collected for three subjects with all visible electrodes. To increase the accuracy of the approximation we used head surface models. Freely available model from Oostenveld research based on data from SPM package and our own model based on data from our EEG/SPECT studies were used. For data collected in four cases with one electrode not visible we compared the invisible base electrode coordinates approximation for Oostenveld and our models. The results vary depending on the missing electrode placement, but application of the realistic head model significantly increases the accuracy of the approximation. |
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AbstractList | This work was performed as part of a larger research concerning the feasibility of improving the localization of epileptic foci, as compared to the standard SPECT examination, by applying the technique of EEG mapping. The presented study extends our previous work on the development of a method for superposition of SPECT images and EEG 3D maps when these two examinations are performed simultaneously. Due to the lack of anatomical data in SPECT images it is a much more difficult task than in the case of MRI/EEG study where electrodes are visible in morphological images. Using the appropriate dose of radioisotope we mark five base electrodes to make them visible in the SPECT image and then approximate the coordinates of the remaining electrodes using properties of the 10-20 electrode placement system and the proposed nine-ellipses model. This allows computing a sequence of 3D EEG maps spanning on all electrodes. It happens, however, that not all five base electrodes can be reliably identified in SPECT data. The aim of the current study was to develop a method for determining the coordinates of base electrode(s) missing in the SPECT image. The algorithm for coordinates approximation has been developed and was tested on data collected for three subjects with all visible electrodes. To increase the accuracy of the approximation we used head surface models. Freely available model from Oostenveld research based on data from SPM package and our own model based on data from our EEG/SPECT studies were used. For data collected in four cases with one electrode not visible we compared the invisible base electrode coordinates approximation for Oostenveld and our models. The results vary depending on the missing electrode placement, but application of the realistic head model significantly increases the accuracy of the approximation. |
Author | Bajera, A. Krolicki, L. Goszczynska, H. Zalewska, E. Kowalczyk, L. |
Author_xml | – sequence: 1 givenname: L. surname: Kowalczyk fullname: Kowalczyk, L. email: leszek.kowalczyk@hotmail.com organization: Nałęcz Institute of Biocybernetics and Biomedical Engineering PAS, Department of Neuroengineering, Ks. Trojdena 4 str., 02-109 Warsaw, Poland – sequence: 2 givenname: H. surname: Goszczynska fullname: Goszczynska, H. email: hgoszczynska@ibib.waw.pl organization: Nałęcz Institute of Biocybernetics and Biomedical Engineering PAS, Department of Neuroengineering, Ks. Trojdena 4 str., 02-109 Warsaw, Poland – sequence: 3 givenname: E. surname: Zalewska fullname: Zalewska, E. organization: Nałęcz Institute of Biocybernetics and Biomedical Engineering PAS, Department of Neuroengineering, Ks. Trojdena 4 str., 02-109 Warsaw, Poland – sequence: 4 givenname: A. surname: Bajera fullname: Bajera, A. organization: Medical University of Warsaw, Department of Nuclear Medicine, Banacha 1a str., 02-097 Warsaw, Poland – sequence: 5 givenname: L. surname: Krolicki fullname: Krolicki, L. organization: Medical University of Warsaw, Department of Nuclear Medicine, Banacha 1a str., 02-097 Warsaw, Poland |
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SubjectTerms | 3D image reconstruction Accuracy Approximation BioImage Suite EEG electrodes EEG mapping Electrodes Mathematical analysis Mathematical models multimodal co-registration Placement SPECT Three dimensional |
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Title | Invisible Base Electrode Coordinates Approximation for Simultaneous SPECT and EEG Data Visualization |
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