dc.contributor.author | Καλατζής, Ιωάννης | el |
dc.contributor.author | Πήλιουρας, Νικόλαος | el |
dc.contributor.author | Βεντούρας, Ερρίκος Μ. | el |
dc.contributor.author | Παπαγεωργίου, Χαράλαμπος | el |
dc.contributor.author | Λιάππας, Ιωάννης Α. | el |
dc.date.accessioned | 2015-04-30T08:36:09Z | |
dc.date.available | 2015-04-30T08:36:09Z | |
dc.date.issued | 2015-04-30 | |
dc.identifier.uri | http://hdl.handle.net/11400/9305 | |
dc.rights | Αναφορά Δημιουργού-Μη Εμπορική Χρήση-Όχι Παράγωγα Έργα 3.0 Ηνωμένες Πολιτείες | * |
dc.rights.uri | http://creativecommons.org/licenses/by-nc-nd/3.0/us/ | * |
dc.source | http://www.sciencedirect.com/science/article/pii/S0167865505000346 | en |
dc.subject | Heroin addicts | |
dc.subject | Pattern recognition | |
dc.subject | Ηρωινομανείς | |
dc.subject | Αναγνώριση προτύπων | |
dc.title | Design and implementation of a multi-PNN structure for discriminating one-month abstinent heroin addicts from healthy controls using the P600 component of ERP signals | en |
heal.type | journalArticle | |
heal.classification | Medicine | |
heal.classification | Biomedical engineering | |
heal.classification | Ιατρική | |
heal.classification | Βιοϊατρική τεχνολογία | |
heal.classificationURI | http://id.loc.gov/authorities/subjects/sh00006614 | |
heal.classificationURI | http://id.loc.gov/authorities/subjects/sh85014237 | |
heal.classificationURI | **N/A**-Ιατρική | |
heal.classificationURI | **N/A**-Βιοϊατρική τεχνολογία | |
heal.keywordURI | http://zbw.eu/stw/descriptor/15410-6 | |
heal.contributorName | Νικολάου, Χρυσούλα | el |
heal.contributorName | Ραμπαβίλας, Ανδρέας Δ. | el |
heal.contributorName | Κάβουρας, Διονύσης Α. | el |
heal.identifier.secondary | doi:10.1016/j.patrec.2005.01.012 | |
heal.language | en | |
heal.access | campus | |
heal.recordProvider | Τ.Ε.Ι. Αθήνας. Σχολή Τεχνολογικών Εφαρμογών. Τμήμα Μηχανικών Βιοϊατρικής Τεχνολογίας Τ.Ε. | el |
heal.publicationDate | 2005 | |
heal.bibliographicCitation | Kalatzis, I., Piliouras, N., Ventouras, E., Papageorgiou, C., Liappas, I., et al. (august 2005). Design and implementation of a multi-PNN structure for discriminating one-month abstinent heroin addicts from healthy controls using the P600 component of ERP signals. Pattern Recognition Letters. 26(11). pp. 1691-1700. Elsevier B.V: 2005. Available from: http://www.sciencedirect.com/science/article/pii/S0167865505000346 [Accessed 07/04/2005] | en |
heal.abstract | A multi-probabilistic neural network (multi-PNN) classification structure has been designed for distinguishing one-month abstinent heroin addicts from normal controls by means of the Event-Related Potentials’ P600 component, selected at 15 scalp leads, elicited under a Working Memory (WM) test. The multi-PNN structure consisted of 15 optimally designed PNN lead-classifiers feeding an end-stage PNN classifier. The multi-PNN structure classified correctly all subjects. When leads were grouped into compartments, highest accuracies were achieved at the frontal (91.7%) and left temporo-central region (86.1%). Highest single-lead precision (86.1%) was found at the P3, C5 and F3 leads. These findings indicate that cognitive function, as represented by P600 during a WM task and explored by the PNN signal processing techniques, may be involved in short-term abstinent heroin addicts. Additionally, these findings indicate that these techniques may significantly facilitate computer-aided analysis of ERPs. | en |
heal.publisher | Elsevier B.V. | en |
heal.journalName | Pattern Recognition Letters | en |
heal.journalType | peer-reviewed | |
heal.fullTextAvailability | true |
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