Adıyaman Üniversitesi Kurumsal Arşivi

Classification of EEG signals of familiar and unfamiliar face stimuli exploiting most discriminative channels

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dc.contributor.author Özbeyaz, Abdurrahman
dc.contributor.author Arıca, Sami
dc.date.accessioned 2024-04-30T07:46:40Z
dc.date.available 2024-04-30T07:46:40Z
dc.date.issued 2017
dc.identifier.issn 1300-0632
dc.identifier.uri http://dspace.adiyaman.edu.tr:8080/xmlui/handle/20.500.12414/5027
dc.description.abstract The objective of the study is to classify electroencephalogram signals recorded in a familiar and unfamiliar face recognition experiment. Frontal views of familiar and unfamiliar face images were shown to 10 volunteers in different sessions. In contrast to previous studies, no marker button was used during the experiment. Participants had to decide whether the displayed face was familiar or unfamiliar at the instant of stimulus presentation. The signals were analyzed in the preprocessing, channel selection, feature extraction, and classification stages. The novel two-feature extraction and eight-channel selection methods were applied to the analyses. Sixteen classification results were compared and the best performance was investigated. Consequently, the highest average classification accuracy was obtained at 72.67% when piecewise constant modeling feature extraction and relative entropy channel selection methods were used. tr
dc.language.iso en tr
dc.publisher Scientific and Technological Research Council Turkey tr
dc.title Classification of EEG signals of familiar and unfamiliar face stimuli exploiting most discriminative channels tr
dc.type Article tr
dc.contributor.authorID 0000-0002-3820-029X tr
dc.contributor.department Achyaman Univ, Fac Engn, Dept Elect & Elect Engn, Achyaman, Turkey tr
dc.contributor.department Cukurova Univ, Fac Engn, Dept Elect & Elect Engn, Adana, Turkey tr
dc.identifier.endpage 3354 tr
dc.identifier.issue 4 tr
dc.identifier.startpage 3342 tr
dc.identifier.volume 25 tr
dc.source.title Turkish Journal Of Electrical Engineering and Computer Sciences tr


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