Desarrollo y comparación de diversos mapas de probabilidades en 3D del cáncer de próstata a partir de imágenes de histología

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Understanding the spatial distribution of prostate cancer and how it changes according to prostate specific antigen (PSA) values, Gleason score, and other clinical parameters may help comprehend the disease and increase the overall success rate of biopsies. This work aims to build 3D spatial distrib...

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Detalles Bibliográficos
Autor: Díaz Rojas, Kristians Edgardo
Formato: tesis de maestría
Fecha de Publicación:2013
Institución:Pontificia Universidad Católica del Perú
Repositorio:PUCP-Tesis
Lenguaje:español
OAI Identifier:oai:tesis.pucp.edu.pe:20.500.12404/5008
Enlace del recurso:http://hdl.handle.net/20.500.12404/5008
Nivel de acceso:acceso abierto
Materia:Procesamiento de señales e imágenes digitales
Reconocimiento de imágenes
Cáncer
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dc.title.es_ES.fl_str_mv Desarrollo y comparación de diversos mapas de probabilidades en 3D del cáncer de próstata a partir de imágenes de histología
title Desarrollo y comparación de diversos mapas de probabilidades en 3D del cáncer de próstata a partir de imágenes de histología
spellingShingle Desarrollo y comparación de diversos mapas de probabilidades en 3D del cáncer de próstata a partir de imágenes de histología
Díaz Rojas, Kristians Edgardo
Procesamiento de señales e imágenes digitales
Reconocimiento de imágenes
Cáncer
https://purl.org/pe-repo/ocde/ford#2.02.05
title_short Desarrollo y comparación de diversos mapas de probabilidades en 3D del cáncer de próstata a partir de imágenes de histología
title_full Desarrollo y comparación de diversos mapas de probabilidades en 3D del cáncer de próstata a partir de imágenes de histología
title_fullStr Desarrollo y comparación de diversos mapas de probabilidades en 3D del cáncer de próstata a partir de imágenes de histología
title_full_unstemmed Desarrollo y comparación de diversos mapas de probabilidades en 3D del cáncer de próstata a partir de imágenes de histología
title_sort Desarrollo y comparación de diversos mapas de probabilidades en 3D del cáncer de próstata a partir de imágenes de histología
author Díaz Rojas, Kristians Edgardo
author_facet Díaz Rojas, Kristians Edgardo
author_role author
dc.contributor.advisor.fl_str_mv Castañeda Aphan, Benjamín
dc.contributor.author.fl_str_mv Díaz Rojas, Kristians Edgardo
dc.subject.es_ES.fl_str_mv Procesamiento de señales e imágenes digitales
Reconocimiento de imágenes
Cáncer
topic Procesamiento de señales e imágenes digitales
Reconocimiento de imágenes
Cáncer
https://purl.org/pe-repo/ocde/ford#2.02.05
dc.subject.ocde.es_ES.fl_str_mv https://purl.org/pe-repo/ocde/ford#2.02.05
description Understanding the spatial distribution of prostate cancer and how it changes according to prostate specific antigen (PSA) values, Gleason score, and other clinical parameters may help comprehend the disease and increase the overall success rate of biopsies. This work aims to build 3D spatial distributions of prostate cancer and examine the extent and location of cancer as a function of independent clinical parameters. The border of the gland and cancerous regions from whole-mount histopathological images are used to reconstruct 3D models showing the localization of tumor. This process utilizes color segmentation and interpolation based on mathematical morphological distance. 58 glands are deformed into one prostate atlas using a combination of rigid, a ne, and b-spline deformable registration techniques. Spatial distribution is developed by counting the number of occurrences in a given position in 3D space from each registered prostate cancer. Finally a di erence between proportions is used to compare di erent spatial distributions. Results show that prostate cancer has a significant di erence (SD) in the right zone of the prostate between populations with PSA greater and less than 5 ng=ml. Age does not have any impact in the spatial distribution of the disease. Positive and negative capsule-penetrated cases show a SD in the right posterior zone. There is SD in almost all the glands between cases with tumors larger and smaller than 10% of the whole prostate. A larger database is needed to improve the statistical validity of the test. Finally, information from whole-mount histopathological images could provide better insight into prostate cancer.
publishDate 2013
dc.date.accessioned.es_ES.fl_str_mv 2013-12-04T21:31:05Z
dc.date.available.es_ES.fl_str_mv 2013-12-04T21:31:05Z
dc.date.created.es_ES.fl_str_mv 2013
dc.date.issued.fl_str_mv 2013-12-04
dc.type.es_ES.fl_str_mv info:eu-repo/semantics/masterThesis
format masterThesis
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rights_invalid_str_mv http://creativecommons.org/licenses/by-nc-sa/2.5/pe/
dc.publisher.es_ES.fl_str_mv Pontificia Universidad Católica del Perú
dc.publisher.country.es_ES.fl_str_mv PE
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spelling Castañeda Aphan, BenjamínDíaz Rojas, Kristians Edgardo2013-12-04T21:31:05Z2013-12-04T21:31:05Z20132013-12-04http://hdl.handle.net/20.500.12404/5008Understanding the spatial distribution of prostate cancer and how it changes according to prostate specific antigen (PSA) values, Gleason score, and other clinical parameters may help comprehend the disease and increase the overall success rate of biopsies. This work aims to build 3D spatial distributions of prostate cancer and examine the extent and location of cancer as a function of independent clinical parameters. The border of the gland and cancerous regions from whole-mount histopathological images are used to reconstruct 3D models showing the localization of tumor. This process utilizes color segmentation and interpolation based on mathematical morphological distance. 58 glands are deformed into one prostate atlas using a combination of rigid, a ne, and b-spline deformable registration techniques. Spatial distribution is developed by counting the number of occurrences in a given position in 3D space from each registered prostate cancer. Finally a di erence between proportions is used to compare di erent spatial distributions. Results show that prostate cancer has a significant di erence (SD) in the right zone of the prostate between populations with PSA greater and less than 5 ng=ml. Age does not have any impact in the spatial distribution of the disease. Positive and negative capsule-penetrated cases show a SD in the right posterior zone. There is SD in almost all the glands between cases with tumors larger and smaller than 10% of the whole prostate. A larger database is needed to improve the statistical validity of the test. Finally, information from whole-mount histopathological images could provide better insight into prostate cancer.TesisspaPontificia Universidad Católica del PerúPEinfo:eu-repo/semantics/openAccesshttp://creativecommons.org/licenses/by-nc-sa/2.5/pe/Procesamiento de señales e imágenes digitalesReconocimiento de imágenesCáncerhttps://purl.org/pe-repo/ocde/ford#2.02.05Desarrollo y comparación de diversos mapas de probabilidades en 3D del cáncer de próstata a partir de imágenes de histologíainfo:eu-repo/semantics/masterThesisreponame:PUCP-Tesisinstname:Pontificia Universidad Católica del Perúinstacron:PUCPSUNEDUMaestro en Procesamiento de señales e imágenes digitalesMaestríaPontificia Universidad Católica del Perú. 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