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Automatic Quantification of Immunohistochemically Stained Cell Nuclei Using Unsupervised Image Analysis

A method for quantification of images of immunohistochemically stained cell nuclei by computing area proportions is presented. The image is transformed by a principal component transform. The resulting first component image is used to segment the objects from the background using dynamic thresholdin...

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Detalles Bibliográficos
Autores principales: Ranefall, Petter, Wester, Kenneth, Bengtsson, Ewert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: IOS Press 1998
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4617571/
https://www.ncbi.nlm.nih.gov/pubmed/9584898
http://dx.doi.org/10.1155/1998/608293
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author Ranefall, Petter
Wester, Kenneth
Bengtsson, Ewert
author_facet Ranefall, Petter
Wester, Kenneth
Bengtsson, Ewert
author_sort Ranefall, Petter
collection PubMed
description A method for quantification of images of immunohistochemically stained cell nuclei by computing area proportions is presented. The image is transformed by a principal component transform. The resulting first component image is used to segment the objects from the background using dynamic thresholding of the P(2)/A‐histogram, where P(2)/A is a global roundness measure. Then the image is transformed into principal component hue, defined as the angle around the first principal component. This image is used to segment positive and negative objects. The method is fully automatic and the principal component approach makes it robust with respect to illumination and focus settings. An independent test set consisting of images grabbed with different focus and illumination for each field of view was used to test the method, and the proposed method showed less variation than the intraoperator variation using supervised Maximum Likelihood classification.
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spelling pubmed-46175712016-01-12 Automatic Quantification of Immunohistochemically Stained Cell Nuclei Using Unsupervised Image Analysis Ranefall, Petter Wester, Kenneth Bengtsson, Ewert Anal Cell Pathol Other A method for quantification of images of immunohistochemically stained cell nuclei by computing area proportions is presented. The image is transformed by a principal component transform. The resulting first component image is used to segment the objects from the background using dynamic thresholding of the P(2)/A‐histogram, where P(2)/A is a global roundness measure. Then the image is transformed into principal component hue, defined as the angle around the first principal component. This image is used to segment positive and negative objects. The method is fully automatic and the principal component approach makes it robust with respect to illumination and focus settings. An independent test set consisting of images grabbed with different focus and illumination for each field of view was used to test the method, and the proposed method showed less variation than the intraoperator variation using supervised Maximum Likelihood classification. IOS Press 1998 1998-01-01 /pmc/articles/PMC4617571/ /pubmed/9584898 http://dx.doi.org/10.1155/1998/608293 Text en Copyright © 1998 Hindawi Publishing Corporation.
spellingShingle Other
Ranefall, Petter
Wester, Kenneth
Bengtsson, Ewert
Automatic Quantification of Immunohistochemically Stained Cell Nuclei Using Unsupervised Image Analysis
title Automatic Quantification of Immunohistochemically Stained Cell Nuclei Using Unsupervised Image Analysis
title_full Automatic Quantification of Immunohistochemically Stained Cell Nuclei Using Unsupervised Image Analysis
title_fullStr Automatic Quantification of Immunohistochemically Stained Cell Nuclei Using Unsupervised Image Analysis
title_full_unstemmed Automatic Quantification of Immunohistochemically Stained Cell Nuclei Using Unsupervised Image Analysis
title_short Automatic Quantification of Immunohistochemically Stained Cell Nuclei Using Unsupervised Image Analysis
title_sort automatic quantification of immunohistochemically stained cell nuclei using unsupervised image analysis
topic Other
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4617571/
https://www.ncbi.nlm.nih.gov/pubmed/9584898
http://dx.doi.org/10.1155/1998/608293
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