A Detection Method of Ectocervical Cell Nuclei for Pap test Images, Based on Adaptive Thresholds and Local Derivatives

Descripción del Articulo

Cervical cancer is one of the main causes of death by disease worldwide. In Peru, it holds the first place in frequency and represents 8% of deaths caused by sickness. To detect the disease in the early stages, one of the most used screening tests is the cervix Papanicolaou test. Currently, digital...

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Detalles Bibliográficos
Autores: Oscanoa1, Julio, Mena, Marcelo, Kemper, Guillermo
Formato: artículo
Fecha de Publicación:2015
Institución:Universidad Peruana de Ciencias Aplicadas
Repositorio:UPC-Institucional
Lenguaje:inglés
OAI Identifier:oai:repositorioacademico.upc.edu.pe:10757/624843
Enlace del recurso:http://hdl.handle.net/10757/624843
Nivel de acceso:acceso abierto
Materia:Cervical cancer
Medical image processing
Nuclei detection
Cells
Cytology
Diagnosis
Image processing
Medical imaging
Pattern recognition systems
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dc.title.en_US.fl_str_mv A Detection Method of Ectocervical Cell Nuclei for Pap test Images, Based on Adaptive Thresholds and Local Derivatives
title A Detection Method of Ectocervical Cell Nuclei for Pap test Images, Based on Adaptive Thresholds and Local Derivatives
spellingShingle A Detection Method of Ectocervical Cell Nuclei for Pap test Images, Based on Adaptive Thresholds and Local Derivatives
Oscanoa1, Julio
Cervical cancer
Medical image processing
Nuclei detection
Cells
Cytology
Diagnosis
Image processing
Medical imaging
Pattern recognition systems
title_short A Detection Method of Ectocervical Cell Nuclei for Pap test Images, Based on Adaptive Thresholds and Local Derivatives
title_full A Detection Method of Ectocervical Cell Nuclei for Pap test Images, Based on Adaptive Thresholds and Local Derivatives
title_fullStr A Detection Method of Ectocervical Cell Nuclei for Pap test Images, Based on Adaptive Thresholds and Local Derivatives
title_full_unstemmed A Detection Method of Ectocervical Cell Nuclei for Pap test Images, Based on Adaptive Thresholds and Local Derivatives
title_sort A Detection Method of Ectocervical Cell Nuclei for Pap test Images, Based on Adaptive Thresholds and Local Derivatives
author Oscanoa1, Julio
author_facet Oscanoa1, Julio
Mena, Marcelo
Kemper, Guillermo
author_role author
author2 Mena, Marcelo
Kemper, Guillermo
author2_role author
author
dc.contributor.email.es_PE.fl_str_mv julioscanoa@gmail.com
dc.contributor.author.fl_str_mv Oscanoa1, Julio
Mena, Marcelo
Kemper, Guillermo
dc.subject.en_US.fl_str_mv Cervical cancer
Medical image processing
Nuclei detection
Cells
Cytology
Diagnosis
Image processing
Medical imaging
Pattern recognition systems
topic Cervical cancer
Medical image processing
Nuclei detection
Cells
Cytology
Diagnosis
Image processing
Medical imaging
Pattern recognition systems
description Cervical cancer is one of the main causes of death by disease worldwide. In Peru, it holds the first place in frequency and represents 8% of deaths caused by sickness. To detect the disease in the early stages, one of the most used screening tests is the cervix Papanicolaou test. Currently, digital images are increasingly being used to improve Pap test efficiency. This work develops an algorithm based on adaptive thresholds, which will be used in Pap smear assisted quality control software. The first stage of the method is a pre-processing step, in which noise and background removal is done. Next, a block is segmented for each one of the points selected as not background, and a local threshold per block is calculated to search for cell nuclei. If a nucleus is detected, an artifact rejection follows, where only cell nuclei and inflammatory cells are left for the doctors to interpret. The method was validated with a set of 55 images containing 2317 cells. The algorithm successfully recognized 92.3% of the total nuclei in all images collected.
publishDate 2015
dc.date.accessioned.none.fl_str_mv 2019-01-14T13:55:58Z
dc.date.available.none.fl_str_mv 2019-01-14T13:55:58Z
dc.date.issued.fl_str_mv 2015-04
dc.type.en_US.fl_str_mv info:eu-repo/semantics/article
format article
dc.identifier.doi.none.fl_str_mv 10.14257/ijmue.2015.10.2.04
dc.identifier.uri.none.fl_str_mv http://hdl.handle.net/10757/624843
dc.identifier.journal.en_US.fl_str_mv International Journal of Multimedia and Ubiquitous Engineering
dc.identifier.isni.none.fl_str_mv 0000 0001 2196 144X
identifier_str_mv 10.14257/ijmue.2015.10.2.04
International Journal of Multimedia and Ubiquitous Engineering
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dc.language.iso.en_US.fl_str_mv eng
language eng
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dc.publisher.en_US.fl_str_mv Science and Engineering Research Support Society
dc.source.es_PE.fl_str_mv Universidad Peruana de Ciencias Aplicadas (UPC)
Repositorio Academico - UPC
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spelling Oscanoa1, JulioMena, MarceloKemper, Guillermojulioscanoa@gmail.com2019-01-14T13:55:58Z2019-01-14T13:55:58Z2015-0410.14257/ijmue.2015.10.2.04http://hdl.handle.net/10757/624843International Journal of Multimedia and Ubiquitous Engineering0000 0001 2196 144XCervical cancer is one of the main causes of death by disease worldwide. In Peru, it holds the first place in frequency and represents 8% of deaths caused by sickness. To detect the disease in the early stages, one of the most used screening tests is the cervix Papanicolaou test. Currently, digital images are increasingly being used to improve Pap test efficiency. This work develops an algorithm based on adaptive thresholds, which will be used in Pap smear assisted quality control software. The first stage of the method is a pre-processing step, in which noise and background removal is done. Next, a block is segmented for each one of the points selected as not background, and a local threshold per block is calculated to search for cell nuclei. If a nucleus is detected, an artifact rejection follows, where only cell nuclei and inflammatory cells are left for the doctors to interpret. The method was validated with a set of 55 images containing 2317 cells. 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