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dc.contributor.author Abibullaev, Berdakh ko
dc.contributor.author An, Jinung ko
dc.date.available 2017-05-11T01:39:31Z -
dc.date.created 2017-04-10 -
dc.date.issued 2012-08 -
dc.identifier.citation Journal of Medical Systems, v.36, no.4, pp.2675 - 2688 -
dc.identifier.issn 0148-5598 -
dc.identifier.uri http://hdl.handle.net/20.500.11750/1618 -
dc.description.abstract Attention deficit hyperactivity disorder is a complex brain disorder which is usually difficult to diagnose. As a result many literature reports about the increasing rate of misdiagnosis of ADHD disorder with other types of brain disorder. There is also a risk of normal children to be associated with ADHD if practical diagnostic criteria are not supported. To this end we propose a decision support system in diagnosing of ADHD disorder through brain electroencephalographic signals. Subjects of 10 children participated in this study, 7 of them were diagnosed with ADHD disorder and remaining 3 children are normal group. Our main goal of this sthudy is to present a supporting diagnostic tool that uses signal processing for feature selection and machine learning algorithms for diagnosis.Particularly, for a feature selection we propose information theoretic which is based on entropy and mutual information measure. We propose a maximal discrepancy criterion for selecting distinct (most distinguishing) features of two groups as well as a semi-supervised formulation for efficiently updating the training set. Further, support vector machine classifier trained and tested for identification of robust marker of EEG patterns for accurate diagnosis of ADHD group. We demonstrate that the applicability of the proposed approach provides higher accuracy in diagnostic process of ADHD disorder than the few currently available methods. © 2011 Springer Science+Business Media, LLC. -
dc.language English -
dc.publisher Springer -
dc.subject ADHD -
dc.subject ADHD Diagnosis -
dc.subject Algorithm -
dc.subject Algorithms -
dc.subject Attention Deficit Disorder -
dc.subject Attention Deficit Disorder With Hyperactivity -
dc.subject Child -
dc.subject Clinical Article -
dc.subject Decision Making, Computer-Assisted -
dc.subject Decision Support System -
dc.subject Diagnostic Accuracy -
dc.subject Diagnostic Procedure -
dc.subject DSM-IV -
dc.subject EEG -
dc.subject Electroencephalogram -
dc.subject Electroencephalography -
dc.subject Entropy -
dc.subject Human -
dc.subject Humans -
dc.subject Measurement -
dc.subject Mutual Information -
dc.subject School Child -
dc.subject Shannon Theory -
dc.subject Signal Processing -
dc.subject SVM -
dc.title Decision Support Algorithm for Diagnosis of ADHD Using Electroencephalograms -
dc.type Article -
dc.identifier.doi 10.1007/s10916-011-9742-x -
dc.identifier.wosid 000306549000058 -
dc.identifier.scopusid 2-s2.0-84873050201 -
dc.type.local Article(Overseas) -
dc.type.rims ART -
dc.description.journalClass 1 -
dc.identifier.citationVolume 36 -
dc.identifier.citationNumber 4 -
dc.identifier.citationStartPage 2675 -
dc.identifier.citationEndPage 2688 -
dc.identifier.citationTitle Journal of Medical Systems -
dc.type.journalArticle Article -
dc.description.isOpenAccess N -
dc.contributor.affiliatedAuthor An, Jinung -
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Appears in Collections:
ETC 1. Journal Articles
Division of Intelligent Robotics Brain Robot Augmented InteractioN(BRAIN) Laboratory 1. Journal Articles
ETC ETC

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