Tagged Template Deformation
Prevost, Raphaël; Cuingnet, Rémi; Mory, Benoît; Cohen, Laurent D.; Ardon, Roberto (2014), Tagged Template Deformation, in Golland, Polina; Hata, Nobuhiko; Barillot, Christian; Hornegger, Joachim; Howe, Robert, Medical Image Computing and Computer-Assisted Intervention – MICCAI 2014 17th International Conference, Boston, MA, USA, September 14-18, 2014, Proceedings, Part I, Springer : Berlin Heidelberg, p. 674-681. 10.1007/978-3-319-10404-1_84
Type
Communication / ConférenceDate
2014Conference title
17th International Conference on Medical Image Computing and Computer-Assisted Intervention – MICCAI 2014Conference date
2014-09Conference city
BostonConference country
United StatesBook title
Medical Image Computing and Computer-Assisted Intervention – MICCAI 2014 17th International Conference, Boston, MA, USA, September 14-18, 2014, Proceedings, Part IBook author
Golland, Polina; Hata, Nobuhiko; Barillot, Christian; Hornegger, Joachim; Howe, RobertPublisher
Springer
Published in
Berlin Heidelberg
ISBN
978-3-319-10403-4
Pages
674-681
Publication identifier
Metadata
Show full item recordAbstract (EN)
Model-based approaches are very popular for medical image segmentation as they carry useful prior information on the target structure. Among them, the implicit template deformation framework recently bridged the gap between the efficiency and flexibility of level-set region competition and the robustness of atlas deformation approaches. This paper generalizes this method by introducing the notion of tagged templates. A tagged template is an implicit model in which different subregions are defined. In each of these subregions, specific image features can be used with various confidence levels. The tags can be either set manually or automatically learnt via a process also hereby described. This generalization therefore greatly widens the scope of potential clinical application of implicit template deformation while maintaining its appealing algorithmic efficiency. We show the great potential of our approach in myocardium segmentation of ultrasound images.Subjects / Keywords
Medical image segmentationRelated items
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