Unsupervised Cardiac Image Segmentation via Multiswarm Active Contours with a Shape Prior

This paper presents a new unsupervised image segmentation method based on particle swarm optimization and scaled active contours with shape prior. The proposed method uses particle swarm optimization over a polar coordinate system to perform the segmentation task, increasing the searching capability...

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Main Authors: I. Cruz-Aceves, J. G. Avina-Cervantes, J. M. Lopez-Hernandez, M. G. Garcia-Hernandez, M. A. Ibarra-Manzano
Format: Article
Language:English
Published: Hindawi Limited 2013-01-01
Series:Computational and Mathematical Methods in Medicine
Online Access:http://dx.doi.org/10.1155/2013/909625
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spelling doaj-76c7306a0a60467a8f5d8bde5b38fc3a2020-11-24T22:41:34ZengHindawi LimitedComputational and Mathematical Methods in Medicine1748-670X1748-67182013-01-01201310.1155/2013/909625909625Unsupervised Cardiac Image Segmentation via Multiswarm Active Contours with a Shape PriorI. Cruz-Aceves0J. G. Avina-Cervantes1J. M. Lopez-Hernandez2M. G. Garcia-Hernandez3M. A. Ibarra-Manzano4Universidad de Guanajuato, División de Ingenierías, Campus Irapuato-Salamanca, Carretera Salamanca-Valle de Santiago Km, 3.5+1.8 Km Comunidad de Palo Blanco, 36885 Salamanca, GTO, MexicoUniversidad de Guanajuato, División de Ingenierías, Campus Irapuato-Salamanca, Carretera Salamanca-Valle de Santiago Km, 3.5+1.8 Km Comunidad de Palo Blanco, 36885 Salamanca, GTO, MexicoUniversidad de Guanajuato, División de Ingenierías, Campus Irapuato-Salamanca, Carretera Salamanca-Valle de Santiago Km, 3.5+1.8 Km Comunidad de Palo Blanco, 36885 Salamanca, GTO, MexicoUniversidad de Guanajuato, División de Ingenierías, Campus Irapuato-Salamanca, Carretera Salamanca-Valle de Santiago Km, 3.5+1.8 Km Comunidad de Palo Blanco, 36885 Salamanca, GTO, MexicoUniversidad de Guanajuato, División de Ingenierías, Campus Irapuato-Salamanca, Carretera Salamanca-Valle de Santiago Km, 3.5+1.8 Km Comunidad de Palo Blanco, 36885 Salamanca, GTO, MexicoThis paper presents a new unsupervised image segmentation method based on particle swarm optimization and scaled active contours with shape prior. The proposed method uses particle swarm optimization over a polar coordinate system to perform the segmentation task, increasing the searching capability on medical images with respect to different interactive segmentation techniques. This method is used to segment the human heart and ventricular areas from datasets of computed tomography and magnetic resonance images, where the shape prior is acquired by cardiologists, and it is utilized as the initial active contour. Moreover, to assess the performance of the cardiac medical image segmentations obtained by the proposed method and by the interactive techniques regarding the regions delineated by experts, a set of validation metrics has been adopted. The experimental results are promising and suggest that the proposed method is capable of segmenting human heart and ventricular areas accurately, which can significantly help cardiologists in clinical decision support.http://dx.doi.org/10.1155/2013/909625
collection DOAJ
language English
format Article
sources DOAJ
author I. Cruz-Aceves
J. G. Avina-Cervantes
J. M. Lopez-Hernandez
M. G. Garcia-Hernandez
M. A. Ibarra-Manzano
spellingShingle I. Cruz-Aceves
J. G. Avina-Cervantes
J. M. Lopez-Hernandez
M. G. Garcia-Hernandez
M. A. Ibarra-Manzano
Unsupervised Cardiac Image Segmentation via Multiswarm Active Contours with a Shape Prior
Computational and Mathematical Methods in Medicine
author_facet I. Cruz-Aceves
J. G. Avina-Cervantes
J. M. Lopez-Hernandez
M. G. Garcia-Hernandez
M. A. Ibarra-Manzano
author_sort I. Cruz-Aceves
title Unsupervised Cardiac Image Segmentation via Multiswarm Active Contours with a Shape Prior
title_short Unsupervised Cardiac Image Segmentation via Multiswarm Active Contours with a Shape Prior
title_full Unsupervised Cardiac Image Segmentation via Multiswarm Active Contours with a Shape Prior
title_fullStr Unsupervised Cardiac Image Segmentation via Multiswarm Active Contours with a Shape Prior
title_full_unstemmed Unsupervised Cardiac Image Segmentation via Multiswarm Active Contours with a Shape Prior
title_sort unsupervised cardiac image segmentation via multiswarm active contours with a shape prior
publisher Hindawi Limited
series Computational and Mathematical Methods in Medicine
issn 1748-670X
1748-6718
publishDate 2013-01-01
description This paper presents a new unsupervised image segmentation method based on particle swarm optimization and scaled active contours with shape prior. The proposed method uses particle swarm optimization over a polar coordinate system to perform the segmentation task, increasing the searching capability on medical images with respect to different interactive segmentation techniques. This method is used to segment the human heart and ventricular areas from datasets of computed tomography and magnetic resonance images, where the shape prior is acquired by cardiologists, and it is utilized as the initial active contour. Moreover, to assess the performance of the cardiac medical image segmentations obtained by the proposed method and by the interactive techniques regarding the regions delineated by experts, a set of validation metrics has been adopted. The experimental results are promising and suggest that the proposed method is capable of segmenting human heart and ventricular areas accurately, which can significantly help cardiologists in clinical decision support.
url http://dx.doi.org/10.1155/2013/909625
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