DocumentCode :
3440815
Title :
Shape prior in Variational Region Growing
Author :
Revol-Muller, C. ; Rose, J.L. ; Pacureanu, Alexandra ; Peyrin, F. ; Odet, C.
Author_Institution :
CREATIS, Univ. de Lyon 1, Villeurbanne, France
fYear :
2012
fDate :
15-18 Oct. 2012
Firstpage :
116
Lastpage :
120
Abstract :
In this paper, we propose two solutions to integrate shape prior in a segmentation process based on region growing. Our special region growing algorithm relies upon a variational framework which allows to easily take into account shape prior in the segmentation process. Region growing is described as an optimization process that aims to minimize some special energy combining intensity function and shape information. Two kinds of energy are proposed depending on the existence of a reference model or the possibility to assess some shape features at voxel level. We applied positively these two approaches in the context of life imaging in order to segment mice kidneys from small animal CT-images and lacuno-canicular network from experimental high resolution Synchrotron Radiation X-Ray Computed Tomography (SRμCT) images.
Keywords :
computerised tomography; image segmentation; kidney; medical image processing; optimisation; synchrotron radiation; SRμCT images; animal CT-images; energy combining intensity function; high resolution synchrotron radiation X-ray computed tomography images; lacuno-canicular network; life imaging; mice kidneys; optimization process; reference model; region growing algorithm; segmentation process; shape information; shape prior; variational framework; variational region growing; voxel level; Active contours; Biomedical imaging; Computational modeling; Image segmentation; Kidney; Shape; Biomedical imaging; Image segmentation; Shape prior;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Image Processing Theory, Tools and Applications (IPTA), 2012 3rd International Conference on
Conference_Location :
Istanbul
ISSN :
2154-5111
Print_ISBN :
978-1-4673-2585-1
Type :
conf
DOI :
10.1109/IPTA.2012.6469571
Filename :
6469571
Link To Document :
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