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  4. A Variational Model for Object Segmentation Using Boundary Information and Shape Prior Driven by the Mumford-Shah Functional
 
research article

A Variational Model for Object Segmentation Using Boundary Information and Shape Prior Driven by the Mumford-Shah Functional

Bresson, X.  
•
Vandergheynst, P.  
•
Thiran, J.  
2006
International Journal of Computer Vision

In this paper, we propose a new variational model to segment an object belonging to a given shape space using the active contour method, a geometric shape prior and the Mumford-Shah functional. The core of our model is an energy functional composed by three complementary terms. The first one is based on a shape model which constrains the active contour to get a shape of interest. The second term detects object boundaries from image gradients. And the third term drives globally the shape prior and the active contour towards a homogeneous intensity region. The segmentation of the object of interest is given by the minimum of our energy functional. This minimum is computed with the calculus of variations and the gradient descent method that provide a system of evolution equations solved with the well-known level set method. We also prove the existence of this minimum in the space of functions with bounded variation. Applications of the proposed model are presented on synthetic and medical images.

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Type
research article
DOI
10.1007/s11263-006-6658-x
Web of Science ID

WOS:000238427400003

Author(s)
Bresson, X.  
Vandergheynst, P.  
Thiran, J.  
Date Issued

2006

Publisher

Springer, Kluwer Academic Publishers

Published in
International Journal of Computer Vision
Volume

68

Issue

2

Start page

145

End page

162

Subjects

LTS2

•

lts5

Note

National Licences

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LTS2  
LTS5  
Available on Infoscience
June 14, 2006
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/231609
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