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Caveats: Numerical Requirements in Graph Theory Based Quantitation of Tissue Architecture

Graph theory based methods represent one approach to an objective and reproducible structural analysis of tissue architecture. By these methods, neighborhood relations between a number of objects (e.g., cells) are explored and inherent to these methods are therefore certain requirements as to the nu...

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Detalles Bibliográficos
Autores principales: Sudbø, J., Marcelpoil, R., Reith, A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: IOS Press 2000
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4617815/
https://www.ncbi.nlm.nih.gov/pubmed/11310642
http://dx.doi.org/10.1155/2000/438202
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author Sudbø, J.
Marcelpoil, R.
Reith, A.
author_facet Sudbø, J.
Marcelpoil, R.
Reith, A.
author_sort Sudbø, J.
collection PubMed
description Graph theory based methods represent one approach to an objective and reproducible structural analysis of tissue architecture. By these methods, neighborhood relations between a number of objects (e.g., cells) are explored and inherent to these methods are therefore certain requirements as to the number of objects to be included in the analysis. However, the question of how many objects are required to achieve reproducible values in repeated computations of proposed structural features, has previously not been adressed specifically. After digitising HE stained slides and storing them as grey level images, cell nuclei were segmented and their geometrical centre of gravity were computed, serving as the basis for construction of the Voronoi diagram (VD) and its subgraphs. Variations in repeated computations of structural features derived from these graphs were related to the number of cell nuclei included in the analysis. We demonstrate a large variation in the values of the structural features from one computation to another in one and the same section when only a limited number of cells (100–500) are included in the analysis. This variation decreased with increasing number of cells analyzed. The exact number of cells required to achieve reproducible values differ significantly between tissues, but not between separate cases of similar lesions. There are no significant differences between normal and malignantly changed tissues in oral mucosa with respect to how many cells must be included. For graph theory based analysis of tissue architecture, care must be taken to include an adequate number of objects; for some of the structural features we have tested, more than 3000 cells.
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spelling pubmed-46178152016-01-12 Caveats: Numerical Requirements in Graph Theory Based Quantitation of Tissue Architecture Sudbø, J. Marcelpoil, R. Reith, A. Anal Cell Pathol Other Graph theory based methods represent one approach to an objective and reproducible structural analysis of tissue architecture. By these methods, neighborhood relations between a number of objects (e.g., cells) are explored and inherent to these methods are therefore certain requirements as to the number of objects to be included in the analysis. However, the question of how many objects are required to achieve reproducible values in repeated computations of proposed structural features, has previously not been adressed specifically. After digitising HE stained slides and storing them as grey level images, cell nuclei were segmented and their geometrical centre of gravity were computed, serving as the basis for construction of the Voronoi diagram (VD) and its subgraphs. Variations in repeated computations of structural features derived from these graphs were related to the number of cell nuclei included in the analysis. We demonstrate a large variation in the values of the structural features from one computation to another in one and the same section when only a limited number of cells (100–500) are included in the analysis. This variation decreased with increasing number of cells analyzed. The exact number of cells required to achieve reproducible values differ significantly between tissues, but not between separate cases of similar lesions. There are no significant differences between normal and malignantly changed tissues in oral mucosa with respect to how many cells must be included. For graph theory based analysis of tissue architecture, care must be taken to include an adequate number of objects; for some of the structural features we have tested, more than 3000 cells. IOS Press 2000 2000-01-01 /pmc/articles/PMC4617815/ /pubmed/11310642 http://dx.doi.org/10.1155/2000/438202 Text en Copyright © 2000 Hindawi Publishing Corporation.
spellingShingle Other
Sudbø, J.
Marcelpoil, R.
Reith, A.
Caveats: Numerical Requirements in Graph Theory Based Quantitation of Tissue Architecture
title Caveats: Numerical Requirements in Graph Theory Based Quantitation of Tissue Architecture
title_full Caveats: Numerical Requirements in Graph Theory Based Quantitation of Tissue Architecture
title_fullStr Caveats: Numerical Requirements in Graph Theory Based Quantitation of Tissue Architecture
title_full_unstemmed Caveats: Numerical Requirements in Graph Theory Based Quantitation of Tissue Architecture
title_short Caveats: Numerical Requirements in Graph Theory Based Quantitation of Tissue Architecture
title_sort caveats: numerical requirements in graph theory based quantitation of tissue architecture
topic Other
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4617815/
https://www.ncbi.nlm.nih.gov/pubmed/11310642
http://dx.doi.org/10.1155/2000/438202
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