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Region-based Active Contour Model based on Markov Random Field to Segment Images with Intensity Non-Uniformity and Noise

This paper represents a new region-based active contour model that can be used to segment images with intensity non-uniformity and high-level noise. The main idea of our proposed method is to use Gaussian distributions with different means and variances with incorporation of intensity non-uniformity...

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Detalles Bibliográficos
Autores principales: Shahvaran, Zahra, Kazemi, Kamran, Helfroush, Mohammad Sadegh, Jafarian, Nassim
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Medknow Publications & Media Pvt Ltd 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3592501/
https://www.ncbi.nlm.nih.gov/pubmed/23493946
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author Shahvaran, Zahra
Kazemi, Kamran
Helfroush, Mohammad Sadegh
Jafarian, Nassim
author_facet Shahvaran, Zahra
Kazemi, Kamran
Helfroush, Mohammad Sadegh
Jafarian, Nassim
author_sort Shahvaran, Zahra
collection PubMed
description This paper represents a new region-based active contour model that can be used to segment images with intensity non-uniformity and high-level noise. The main idea of our proposed method is to use Gaussian distributions with different means and variances with incorporation of intensity non-uniformity model for image segmentation. In order to integrate the spatial information between neighboring pixels in our proposed method, we use Markov Random Field. Our experiments on synthetic images and cerebral magnetic resonance images show the advantages of the proposed method over state-of-art methods, i.e. local Gaussian distribution fitting.
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spelling pubmed-35925012013-03-14 Region-based Active Contour Model based on Markov Random Field to Segment Images with Intensity Non-Uniformity and Noise Shahvaran, Zahra Kazemi, Kamran Helfroush, Mohammad Sadegh Jafarian, Nassim J Med Signals Sens Original Article This paper represents a new region-based active contour model that can be used to segment images with intensity non-uniformity and high-level noise. The main idea of our proposed method is to use Gaussian distributions with different means and variances with incorporation of intensity non-uniformity model for image segmentation. In order to integrate the spatial information between neighboring pixels in our proposed method, we use Markov Random Field. Our experiments on synthetic images and cerebral magnetic resonance images show the advantages of the proposed method over state-of-art methods, i.e. local Gaussian distribution fitting. Medknow Publications & Media Pvt Ltd 2012 /pmc/articles/PMC3592501/ /pubmed/23493946 Text en Copyright: © Journal of Medical Signals and Sensors http://creativecommons.org/licenses/by-nc-sa/3.0 This is an open-access article distributed under the terms of the Creative Commons Attribution-Noncommercial-Share Alike 3.0 Unported, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Shahvaran, Zahra
Kazemi, Kamran
Helfroush, Mohammad Sadegh
Jafarian, Nassim
Region-based Active Contour Model based on Markov Random Field to Segment Images with Intensity Non-Uniformity and Noise
title Region-based Active Contour Model based on Markov Random Field to Segment Images with Intensity Non-Uniformity and Noise
title_full Region-based Active Contour Model based on Markov Random Field to Segment Images with Intensity Non-Uniformity and Noise
title_fullStr Region-based Active Contour Model based on Markov Random Field to Segment Images with Intensity Non-Uniformity and Noise
title_full_unstemmed Region-based Active Contour Model based on Markov Random Field to Segment Images with Intensity Non-Uniformity and Noise
title_short Region-based Active Contour Model based on Markov Random Field to Segment Images with Intensity Non-Uniformity and Noise
title_sort region-based active contour model based on markov random field to segment images with intensity non-uniformity and noise
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3592501/
https://www.ncbi.nlm.nih.gov/pubmed/23493946
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