A treatment decision model for breast cancer patients
Breast cancer is the most common cancer among women worldwide. While breast cancer screening policies have been widely studied with the goal to achieve early detection, limited research has been done to optimize treatment decisions once a screening policy is established. In this paper, we propose a...
- Autores:
-
Bolívar Vargas, Juan David
- Tipo de recurso:
- Fecha de publicación:
- 2010
- Institución:
- Universidad de los Andes
- Repositorio:
- Séneca: repositorio Uniandes
- Idioma:
- eng
- OAI Identifier:
- oai:repositorio.uniandes.edu.co:1992/12616
- Acceso en línea:
- http://hdl.handle.net/1992/12616
- Palabra clave:
- Neoplasmas de la mama - Tratamiento - Investigaciones
Mamografía - Investigaciones
Procesos de Markov
Ingeniería
- Rights
- openAccess
- License
- https://repositorio.uniandes.edu.co/static/pdf/aceptacion_uso_es.pdf
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Al consultar y hacer uso de este recurso, está aceptando las condiciones de uso establecidas por los autores.https://repositorio.uniandes.edu.co/static/pdf/aceptacion_uso_es.pdfinfo:eu-repo/semantics/openAccesshttp://purl.org/coar/access_right/c_abf2Zhang, Shengfan0e308356-c6a3-46d5-a1fe-dceb66ac45d9600Akhavan Tabatabaei, Raha9bc95ead-d1c9-4469-8820-df5b306a65e8600Bolívar Vargas, Juan David580a45ed-68dd-4185-96b8-927ff6ff13d8600Castillo Hernández, Mario2018-09-28T09:11:28Z2018-09-28T09:11:28Z2010http://hdl.handle.net/1992/12616u686582.pdfinstname:Universidad de los Andesreponame:Repositorio Institucional Sénecarepourl:https://repositorio.uniandes.edu.co/Breast cancer is the most common cancer among women worldwide. While breast cancer screening policies have been widely studied with the goal to achieve early detection, limited research has been done to optimize treatment decisions once a screening policy is established. In this paper, we propose a dynamic decision model to determine optimal breast cancer treatment decisions that consider both the impact of over-treatment and the potential delay in cancer detection. These two failures are caused by spontaneous cancer regression and type II error in mammography results, respectively. Our goal is to maximize a patient's life score, which depends on various factors: age, cancer stage, estrogen receptor status, type of treatment and the patient's personal opinion about the side effects. Our results indicate that a treatment decision is not always the best option for a patient, and when the decision is to treat the best treatment decision is not always the same. The optimal treatment policy depends on various factors such as age, personal preferences and cancer stage.Magíster en Ingeniería IndustrialMaestría20 hojasapplication/pdfengUniandesMaestría en Ingeniería IndustrialFacultad de IngenieríaDepartamento de Ingeniería Industrialinstname:Universidad de los Andesreponame:Repositorio Institucional SénecaA treatment decision model for breast cancer patientsTrabajo de grado - Maestríainfo:eu-repo/semantics/masterThesishttp://purl.org/coar/version/c_970fb48d4fbd8a85Texthttp://purl.org/redcol/resource_type/TMNeoplasmas de la mama - Tratamiento - InvestigacionesMamografía - InvestigacionesProcesos de MarkovIngenieríaPublicationTHUMBNAILu686582.pdf.jpgu686582.pdf.jpgIM Thumbnailimage/jpeg16399https://repositorio.uniandes.edu.co/bitstreams/a336e2df-44c0-4ed1-8aa4-19b47323301e/download8e916b67a358ed4a9b03269caceb006cMD55TEXTu686582.pdf.txtu686582.pdf.txtExtracted texttext/plain61318https://repositorio.uniandes.edu.co/bitstreams/5dc5ca33-4428-47e8-b95d-83f123c66e40/download61ca545a122640a399e1b4c264844b2aMD54ORIGINALu686582.pdfapplication/pdf330245https://repositorio.uniandes.edu.co/bitstreams/abab64c6-af75-49a6-9dfc-efd537d2aedc/downloadc4edd8e273a19aa3df0d3a6e3acec4daMD511992/12616oai:repositorio.uniandes.edu.co:1992/126162023-10-10 15:33:17.346https://repositorio.uniandes.edu.co/static/pdf/aceptacion_uso_es.pdfopen.accesshttps://repositorio.uniandes.edu.coRepositorio institucional Sénecaadminrepositorio@uniandes.edu.co |
dc.title.es_CO.fl_str_mv |
A treatment decision model for breast cancer patients |
title |
A treatment decision model for breast cancer patients |
spellingShingle |
A treatment decision model for breast cancer patients Neoplasmas de la mama - Tratamiento - Investigaciones Mamografía - Investigaciones Procesos de Markov Ingeniería |
title_short |
A treatment decision model for breast cancer patients |
title_full |
A treatment decision model for breast cancer patients |
title_fullStr |
A treatment decision model for breast cancer patients |
title_full_unstemmed |
A treatment decision model for breast cancer patients |
title_sort |
A treatment decision model for breast cancer patients |
dc.creator.fl_str_mv |
Bolívar Vargas, Juan David |
dc.contributor.advisor.none.fl_str_mv |
Zhang, Shengfan Akhavan Tabatabaei, Raha |
dc.contributor.author.none.fl_str_mv |
Bolívar Vargas, Juan David |
dc.contributor.jury.none.fl_str_mv |
Castillo Hernández, Mario |
dc.subject.keyword.es_CO.fl_str_mv |
Neoplasmas de la mama - Tratamiento - Investigaciones Mamografía - Investigaciones Procesos de Markov |
topic |
Neoplasmas de la mama - Tratamiento - Investigaciones Mamografía - Investigaciones Procesos de Markov Ingeniería |
dc.subject.themes.none.fl_str_mv |
Ingeniería |
description |
Breast cancer is the most common cancer among women worldwide. While breast cancer screening policies have been widely studied with the goal to achieve early detection, limited research has been done to optimize treatment decisions once a screening policy is established. In this paper, we propose a dynamic decision model to determine optimal breast cancer treatment decisions that consider both the impact of over-treatment and the potential delay in cancer detection. These two failures are caused by spontaneous cancer regression and type II error in mammography results, respectively. Our goal is to maximize a patient's life score, which depends on various factors: age, cancer stage, estrogen receptor status, type of treatment and the patient's personal opinion about the side effects. Our results indicate that a treatment decision is not always the best option for a patient, and when the decision is to treat the best treatment decision is not always the same. The optimal treatment policy depends on various factors such as age, personal preferences and cancer stage. |
publishDate |
2010 |
dc.date.issued.none.fl_str_mv |
2010 |
dc.date.accessioned.none.fl_str_mv |
2018-09-28T09:11:28Z |
dc.date.available.none.fl_str_mv |
2018-09-28T09:11:28Z |
dc.type.spa.fl_str_mv |
Trabajo de grado - Maestría |
dc.type.coarversion.fl_str_mv |
http://purl.org/coar/version/c_970fb48d4fbd8a85 |
dc.type.driver.spa.fl_str_mv |
info:eu-repo/semantics/masterThesis |
dc.type.content.spa.fl_str_mv |
Text |
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http://purl.org/redcol/resource_type/TM |
dc.identifier.uri.none.fl_str_mv |
http://hdl.handle.net/1992/12616 |
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u686582.pdf |
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repourl:https://repositorio.uniandes.edu.co/ |
url |
http://hdl.handle.net/1992/12616 |
identifier_str_mv |
u686582.pdf instname:Universidad de los Andes reponame:Repositorio Institucional Séneca repourl:https://repositorio.uniandes.edu.co/ |
dc.language.iso.es_CO.fl_str_mv |
eng |
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eng |
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https://repositorio.uniandes.edu.co/static/pdf/aceptacion_uso_es.pdf |
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info:eu-repo/semantics/openAccess |
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openAccess |
dc.format.extent.es_CO.fl_str_mv |
20 hojas |
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application/pdf |
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Uniandes |
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Maestría en Ingeniería Industrial |
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Facultad de Ingeniería |
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Departamento de Ingeniería Industrial |
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