Publication:
Determination of ECoG Information Flow Activity Based on Granger Causality and Hilbert Transformation

dc.contributor.advisor
dc.contributor.authorDemirer, Rüştü Murat
dc.contributor.authorÖzerdem, Mehmet Sıraç
dc.contributor.authorBayrak, Coşkun
dc.contributor.authorMendi, Şekip Engin
dc.contributor.authorID141152tr_TR
dc.contributor.authorID115848tr_TR
dc.contributor.authorID6194tr_TR
dc.contributor.authorID19330tr_TR
dc.date.accessioned2017-10-23T07:51:32Z
dc.date.available2017-10-23T07:51:32Z
dc.date.issued2013-12
dc.description.abstractAnalysis of directional information flow patterns among different regions of the brain is important for investigating the relation between ECoG (electrocorticographic) and mental activity. The objective is to study and evaluate the information flow activity at different frequencies in the primary motor cortex. We employed Granger causality for capturing the future state of the propagation path and direction between recording electrode sites on the cerebral cortex. A grid covered the right motor cortex completely due to its size (approx. 8 cm x 8 cm) but grid area extends to the surrounding cortex areas. During the experiment, a subject was asked to imagine performing two activities: movement of the left small finger and/or movement of the tongue. The time series of the electrical brain activity was recorded during these trials using an 8 x 8 (0.016-300 Hz band with) ECoG platinum electrode grid, which was placed on the contralateral (right) motor cortex. For detection of information flow activity and communication frequencies among the electrodes, we have proposed a method based on following steps: (i) calculation of analytical time series such as amplitude and phase difference acquired from Hilbert transformation, (ii) selection of frequency having highest interdependence for the electrode pairs for the concerned time series over a sliding window in which we assumed time series were stationary, (iii) calculation of Granger causality values for each pair with selected frequency. The information flow (causal influence) activity and communication frequencies between the electrodes in grid were determined and shown successfully. It is supposed that information flow activity and communication frequencies between the electrodes in the grid are approximately the same for the same pattern. The successful employment of Granger causality and Hilbert transformation for the detection of the propagation path and direction of each component of ECoG among different subcortex areas were capable of determining the information flow (causal influence) activity and communication frequencies between the populations of neurons successfully. (C) 2013 Elsevier Ireland Ltd. All rights reserved.tr_TR
dc.identifier.issn0169-2607
dc.identifier.pubmed24070543
dc.identifier.pubmed24070543en
dc.identifier.scopus2-s2.0-84885423279
dc.identifier.scopus2-s2.0-84885423279en
dc.identifier.urihttp://hdl.handle.net/11413/1753
dc.identifier.wos325750100014
dc.identifier.wos325750100014en
dc.language.isoen_UStr_TR
dc.publisherElsevier Ireland Ltd, Elsevıer House, Brookvale Plaza, East Park Shannon, Co, Clare, 00000, Irelandtr_TR
dc.relationComputer Methods and Programs in Biomedicinetr_TR
dc.subjectBrain Computer Interfacetr_TR
dc.subjectECoGtr_TR
dc.subjectGranger Causalittr_TR
dc.subjectMulti-dimensional Hilberttr_TR
dc.subjectTransformationtr_TR
dc.subjectDirected Transfer-Functiontr_TR
dc.subjectBraintr_TR
dc.subjectConnectivitytr_TR
dc.subjectNetworkstr_TR
dc.subjectEEGtr_TR
dc.subjectBeyin Bilgisayar Arabirimitr_TR
dc.subjectGranger Nedenselliktr_TR
dc.subjectÇok Boyutlu Hilberttr_TR
dc.subjectTransformasyontr_TR
dc.subjectYönlendirilmiş Transfer Fonksiyonutr_TR
dc.subjectBeyintr_TR
dc.subjectBağlantıtr_TR
dc.subjectAğlartr_TR
dc.titleDetermination of ECoG Information Flow Activity Based on Granger Causality and Hilbert Transformationtr_TR
dc.typeArticle
dspace.entity.typePublication
local.indexed.atpubmed
local.indexed.atscopus
local.indexed.atwos

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