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research article

Efficient Shape Priors for Spline-Based Snakes

Delgado-Gonzalo, R.
•
Schmitter, D.
•
Uhlmann, V.
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2015
IEEE Transactions on Image Processing

Parametric active contours are an attractive approach for image segmentation, thanks to their computational efficiency. They are driven by application-dependent energies that reflect the prior knowledge on the object to be segmented. We propose an energy involving shape priors acting in a regularization-like manner. Thereby, the shape of the snake is orthogonally projected onto the space that spans the affine transformations of a given shape prior. The formulation of the curves is continuous, which provides computational benefits when compared with landmark-based (discrete) methods. We show that this approach improves the robustness and quality of spline-based segmentation algorithms, while its computational overhead is negligible. An interactive and ready-to-use implementation of the proposed algorithm is available and was successfully tested on real data in order to segment Drosophila flies and yeast cells in microscopic images.

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Type
research article
DOI
10.1109/Tip.2015.2457335
Web of Science ID

WOS:000358923100011

Author(s)
Delgado-Gonzalo, R.
Schmitter, D.
Uhlmann, V.
Unser, M.  
Date Issued

2015

Published in
IEEE Transactions on Image Processing
Volume

24

Issue

11

Start page

3915

End page

3926

Subjects

Active contours

•

model-based segmentation

•

parametric snake

•

deformable template

•

B-spline

•

shape space

URL

URL

http://bigwww.epfl.ch/publications/delgadogonzalo1502.html

URL

http://bigwww.epfl.ch/publications/delgadogonzalo1502.pdf

URL

http://bigwww.epfl.ch/publications/delgadogonzalo1502.ps
Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LIB  
FunderGrant Number

FNS

200020-162343

Available on Infoscience
September 18, 2015
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/118211
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