Deformable Meshes for Medical Image Segmentation

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Accurate Automatic Segmentation of Anatomical Structures, Aktuelle Forschung Medizintechnik – Latest Research in Medical Engineering

ISBN: 3658070145
ISBN 13: 9783658070144
Autor: Kainmueller, Dagmar
Verlag: Springer Vieweg
Umfang: xviii, 180 S., 22 s/w Illustr., 30 farbige Illustr., 180 p. 52 illus., 30 illus. in color.
Erscheinungsdatum: 29.08.2014
Auflage: 1/2014
Produktform: Kartoniert
Einband: Kartoniert

Segmentation of anatomical structures in medical image data is an essential task in clinical practice. Dagmar Kainmueller introduces methods for accurate fully automatic segmentation of anatomical structures in 3D medical image data. The author’s core methodological contribution is a novel deformation model that overcomes limitations of state-of-the-art Deformable Surface approaches, hence allowing for accurate segmentation of tip- and ridge-shaped features of anatomical structures. As for practical contributions, she proposes application-specific segmentation pipelines for a range of anatomical structures, together with thorough evaluations of segmentation accuracy on clinical image data. As compared to related work, these fully automatic pipelines allow for highly accurate segmentation of benchmark image data.Contents – Deformable Meshes for Accurate Automatic Segmentation Omnidirectional Displacements for Deformable Surfaces (ODDS) Coupled Deformable Surfaces for Multiobject Segmentation From Surface Mesh Deformations to Volume Deformations Segmentation of Anatomical Structures in Medical Image Data    Target GroupsAcademics and practitioners in the fields of computer science, medical imaging, and automatic segmentation. The AuthorDagmar Kainmueller works as a research scientist at the Max Planck Institute of Molecular Cell Biology and Genetics in Dresden, Germany, with a focus on bio image analysis. The EditorThe series Aktuelle Forschung Medizintechnik – Latest Research in Medical Engineering is edited by Thorsten M. Buzug. 

Artikelnummer: 7027919 Kategorie:

Beschreibung

Segmentation of anatomical structures in medical image data is an essential task in clinical practice. Dagmar Kainmueller introduces methods for accurate fully automatic segmentation of anatomical structures in 3D medical image data. The author's core methodological contribution is a novel deformation model that overcomes limitations of state-of-the-art Deformable Surface approaches, hence allowing for accurate segmentation of tip- and ridge-shaped features of anatomical structures. As for practical contributions, she proposes application-specific segmentation pipelines for a range of anatomical structures, together with thorough evaluations of segmentation accuracy on clinical image data. As compared to related work, these fully automatic pipelines allow for highly accurate segmentation of benchmark image data.

Autorenporträt

Dagmar Kainmueller works as a research scientist at the Max Planck Institute of Molecular Cell Biology and Genetics in Dresden, Germany, with a focus on bio image analysis.

Herstellerkennzeichnung:


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E-Mail: juergen.hartmann@springer.com

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