Robust voxel similarity metrics for the registration of dissimilar single and multimodal images

dc.contributor.authorNikou, C.en
dc.contributor.authorHeitz, F.en
dc.contributor.authorArmspach, J. P.en
dc.date.accessioned2015-11-24T17:03:09Z
dc.date.available2015-11-24T17:03:09Z
dc.identifier.issn0031-3203-
dc.identifier.urihttps://olympias.lib.uoi.gr/jspui/handle/123456789/11137
dc.rightsDefault Licence-
dc.subjectsingle and multimodal image registrationen
dc.subjectdissimilar image registrationen
dc.subjectsimilarity metricsen
dc.subjectrobust estimationen
dc.subjectbrain imagesen
dc.subjectmr-imagesen
dc.subjectalgorithmen
dc.titleRobust voxel similarity metrics for the registration of dissimilar single and multimodal imagesen
heal.abstractIn this paper, we develop data driven registration algorithms, relying on pixel similarity metrics, that enable an accurate (subpixel) rigid registration of dissimilar single or multimodal 2D/3D images. Gross dissimilarities are handled by considering similarity measures related to robust M-estimators. In particular, a novel (robust) similarity metric is proposed for comparing multimodal images. The proposed robust similarity metrics are compared to the most popular standard similarity metrics, on synthetic as well as on real-world image pairs showing gross dissimilarities. Three case studies are considered: the registration of single modal and multimodal 3D medical images, the matching of multispectral remotely sensed images, and the registration of intensity and range images. The proposed robust similarity measures compare favourably with the standard (non-robust) techniques. (C) 1994 Pattern Recognition Society. Published by Elsevier Science Ltd. All rights reserved.en
heal.accesscampus-
heal.fullTextAvailabilityTRUE-
heal.journalNamePattern Recognitionen
heal.journalTypepeer reviewed-
heal.languageen-
heal.publicationDate1999-
heal.recordProviderΠανεπιστήμιο Ιωαννίνων. Σχολή Θετικών Επιστημών. Τμήμα Μηχανικών Ηλεκτρονικών Υπολογιστών και Πληροφορικήςel
heal.typejournalArticle-
heal.type.elΆρθρο Περιοδικούel
heal.type.enJournal articleen

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