Manifold-enhanced Segmentation through Random Walks on Linear Subspace Priors

被引:6
作者
Baudin, Pierre Yves [1 ,2 ,3 ,4 ,6 ]
Azzabou, Noura [5 ,6 ,7 ]
Carlier, Pierre [5 ,6 ,7 ]
Paragios, Nikos [2 ,4 ]
机构
[1] SIEMENS Healthcare, St Denis, France
[2] Ecole Cent Paris, Ctr Visual Comp, Paris, France
[3] Univ Paris Est, LIGM UMR CNRS, Ctr Visual Comp, Ecole Ponts ParisTech, Champs sur Marne, France
[4] Equipe Galen, INRIA Saclay, Palaiseau, France
[5] Inst Myol, Paris, France
[6] CEA, I2BM, MIRCen, IdM NMR Lab, Paris, France
[7] UPMC Univ Paris 06, Paris, France
来源
PROCEEDINGS OF THE BRITISH MACHINE VISION CONFERENCE 2012 | 2012年
关键词
REGISTRATION;
D O I
10.5244/C.26.52
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
In this paper we propose a novel method for knowledge-based segmentation. Our contribution lies on the introduction of linear sub-spaces constraints within the random-walk segmentation framework. Prior knowledge is obtained through principal component analysis that is then combined with conventional boundary constraints for image segmentation. The approach is validated on a challenging clinical setting that is multicomponent segmentation of the human upper leg skeletal muscle in Magnetic Resonance Imaging, where there is limited visual differentiation support between muscle classes.
引用
收藏
页数:10
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