Application of Intelligent Processing and 4-D Deformation Modeling to the Detection of Abnormal Motion Patterns

Maglaveras, Nicos/ Dimitriadis, Alexis/ Pappas, Costas/ Stalidis, George/ Μαγκλαβέρας, Νίκος/ Παππάς, Κωνσταντίνος/ Δημητριάδης, Αλέξης/ Σταλίδης, Γιώργος


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dc.contributor.authorMaglaveras, Nicosel
dc.contributor.authorDimitriadis, Alexisel
dc.contributor.authorPappas, Costasel
dc.contributor.authorStalidis, Georgeel
dc.contributor.otherΜαγκλαβέρας, Νίκοςel
dc.contributor.otherΠαππάς, Κωνσταντίνοςel
dc.contributor.otherΔημητριάδης, Αλέξηςel
dc.contributor.otherΣταλίδης, Γιώργοςel
dc.date.accessioned2015-07-12T07:57:01Zel
dc.date.accessioned2018-02-27T18:18:39Z-
dc.date.available2015-07-12T07:57:01Zel
dc.date.available2018-02-27T18:18:39Z-
dc.date.issued2000el
dc.identifierhttp://ieeexplore.ieee.org/xpl/articleDetails.jsp?arnumber=898620el
dc.identifier10.1109/CIC.2000.898620el
dc.identifier.citationIEEE Computers in Cardiology, Boston, 2000el
dc.identifier.citationis, Maglaveras, Dimitriadis, Pappas, G. (2000). Application of Intelligent Processing and 4-D Deformation Modeling to the Detection of Abnormal Motion Patterns. Πρακτικά συνεδρίου από -ο IEEE Computers in Cardiology που διεξήχθη σε Boston. Φορέας διεξαγωγής -. -: -.el
dc.identifier.issn0276-6547el
dc.identifier.urihttp://195.251.240.227/jspui/handle/123456789/4634-
dc.descriptionΔημοσιεύσεις μελών--ΣΔΟ--Τμήμα Εμπορίας και Διαφήμισης,2000el
dc.description.abstractThe study of cardiac motion through CINE MRI is an important non-invasive diagnostic tool for cardiac abnormalities. In this paper, a method for automatic detection of abnormal motion patterns is proposed to be used as a computerized diagnostic tool for pathologic cardiac function. A multi-scale modeling method, based on a Generating-Shrinking neural network and a 4-D surface parametric model were used to extract the deformation of the myocardium from multi slice-multi phase MRI examinations. A feature extraction procedure then calculated myocardial thickening and radial deformation of the left ventricle and produced a set of motion parameters from the surface model. Input patterns consisting of the above features were fed into a feedforward neural network, which was trained to capture the normal cardiac function and to distinguish certain pathologic motion patternsel
dc.language.isoenel
dc.publisherIEEEel
dc.rightsΤο τεκμήριο πιθανώς υπόκειται σε σχετική με τα Πνευματικά Δικαιώματα νομοθεσίαel
dc.rightsThis item is probably protected by Copyright Legislationel
dc.source.urihttp://ieeexplore.ieee.org/xpl/mostRecentIssue.jsp?punumber=7213el
dc.subjectFeedforward Neural Netsel
dc.subjectFeature Extractionel
dc.subjectBiomechanicel
dc.subjectBiomedical MRIel
dc.subjectCardiologyel
dc.subjectMedical Image Processingel
dc.subjectImage Motion Analysisel
dc.subjectPhysiological Modelsel
dc.titleApplication of Intelligent Processing and 4-D Deformation Modeling to the Detection of Abnormal Motion Patternsel
dc.typeConference articleel
heal.typeotherel
heal.type.enOtheren
heal.dateAvailable2018-02-27T18:19:39Z-
heal.languageelel
heal.accessfreeel
heal.recordProviderΤΕΙ Θεσσαλονίκηςel
heal.fullTextAvailabilityfalseel
heal.type.elΆλλοel
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