Extracting dynamic adaptations from the context through reinforcement learning
Context-aware dynamic adaptive systems have the peculiarity of adapting their behavior according to situations gathered from their surrounding environment, for example, information gathered from user actions. However, the larger the system is, the higher the likelihood of situations with multiple po...
- Autores:
-
Castro Villamizar, Jorge Humberto
- Tipo de recurso:
- Fecha de publicación:
- 2018
- Institución:
- Universidad de los Andes
- Repositorio:
- Séneca: repositorio Uniandes
- Idioma:
- eng
- OAI Identifier:
- oai:repositorio.uniandes.edu.co:1992/34625
- Acceso en línea:
- http://hdl.handle.net/1992/34625
- Palabra clave:
- Sistemas autoadaptativos
Aprendizaje por refuerzo (Aprendizaje automático)
Ingeniería de software
Ingeniería
- Rights
- openAccess
- License
- http://creativecommons.org/licenses/by-nc-nd/4.0/
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Al consultar y hacer uso de este recurso, está aceptando las condiciones de uso establecidas por los autores.http://creativecommons.org/licenses/by-nc-nd/4.0/info:eu-repo/semantics/openAccesshttp://purl.org/coar/access_right/c_abf2Cardozo Álvarez, Nicolásvirtual::10982-1Castro Villamizar, Jorge Humberto7a562154-31fe-4ead-9663-ba4c2408f93e500Garcés Pernett, Kelly JohanyPérez Morales, Fredy2020-06-10T09:14:41Z2020-06-10T09:14:41Z2018http://hdl.handle.net/1992/34625u808163.pdfinstname:Universidad de los Andesreponame:Repositorio Institucional Sénecarepourl:https://repositorio.uniandes.edu.co/Context-aware dynamic adaptive systems have the peculiarity of adapting their behavior according to situations gathered from their surrounding environment, for example, information gathered from user actions. However, the larger the system is, the higher the likelihood of situations with multiple possible adaptations to the system base behavior, for such systems foreseeing all possible situations is unfeasible, especially if user interaction is involved. In this thesis, we explore a reinforcement learning approach, to extract these situations, where we validate the thesis with the development of a prototype of a web dynamic public urban transport system.Los sistemas adaptativos dinámicos orientados al contexto tienen la peculiaridad de adaptar su comportamiento con base en situaciones adquiridas en el entorno que los rodea, por ejemplo, información recopilada a partir de las acciones del usuario. Sin embargo, cuanto más grande es el sistema, mayor es la probabilidad de situaciones con múltiples adaptaciones posibles al comportamiento básico del sistema, para esos sistemas prever todas las situaciones posibles es inviable, especialmente si se trata de la interacción del usuario. En esta tesis, exploramos un enfoque de aprendizaje reforzado, para extraer estas situaciones, donde validamos la tesis con el desarrollo de un prototipo de un sistema de transporte público urbano dinámico en la web.Magíster en Ingeniería de SoftwareMaestría14 hojasapplication/pdfengUniandesMaestría en Ingeniería de SoftwareFacultad de IngenieríaDepartamento de Ingeniería de Sistemas y Computacióninstname:Universidad de los Andesreponame:Repositorio Institucional SénecaExtracting dynamic adaptations from the context through reinforcement learningTrabajo de grado - Maestríainfo:eu-repo/semantics/masterThesishttp://purl.org/coar/version/c_970fb48d4fbd8a85Texthttp://purl.org/redcol/resource_type/TMSistemas autoadaptativosAprendizaje por refuerzo (Aprendizaje automático)Ingeniería de softwareIngenieríaPublicationhttps://scholar.google.es/citations?user=3iTzjQsAAAAJvirtual::10982-10000-0002-1094-9952virtual::10982-1a77ff528-fc33-44d6-9022-814f81ef407avirtual::10982-1a77ff528-fc33-44d6-9022-814f81ef407avirtual::10982-1THUMBNAILu808163.pdf.jpgu808163.pdf.jpgIM Thumbnailimage/jpeg28600https://repositorio.uniandes.edu.co/bitstreams/bd8716a3-4594-46d8-a8a7-03830de8db19/downloadc199c4a997c8cee76c602807d632ea38MD55ORIGINALu808163.pdfapplication/pdf773531https://repositorio.uniandes.edu.co/bitstreams/f24e121a-2e9c-4c98-a554-c86fdf24ea2e/downloadb01c0a376e28802e9ed4876052263c2cMD51TEXTu808163.pdf.txtu808163.pdf.txtExtracted texttext/plain74912https://repositorio.uniandes.edu.co/bitstreams/e7585faa-3c22-4fc2-87e5-f495f1318696/download4e3a945f8b96e9eca59d280a91d3add0MD541992/34625oai:repositorio.uniandes.edu.co:1992/346252024-03-13 14:19:21.744http://creativecommons.org/licenses/by-nc-nd/4.0/open.accesshttps://repositorio.uniandes.edu.coRepositorio institucional Sénecaadminrepositorio@uniandes.edu.co |
dc.title.es_CO.fl_str_mv |
Extracting dynamic adaptations from the context through reinforcement learning |
title |
Extracting dynamic adaptations from the context through reinforcement learning |
spellingShingle |
Extracting dynamic adaptations from the context through reinforcement learning Sistemas autoadaptativos Aprendizaje por refuerzo (Aprendizaje automático) Ingeniería de software Ingeniería |
title_short |
Extracting dynamic adaptations from the context through reinforcement learning |
title_full |
Extracting dynamic adaptations from the context through reinforcement learning |
title_fullStr |
Extracting dynamic adaptations from the context through reinforcement learning |
title_full_unstemmed |
Extracting dynamic adaptations from the context through reinforcement learning |
title_sort |
Extracting dynamic adaptations from the context through reinforcement learning |
dc.creator.fl_str_mv |
Castro Villamizar, Jorge Humberto |
dc.contributor.advisor.none.fl_str_mv |
Cardozo Álvarez, Nicolás |
dc.contributor.author.none.fl_str_mv |
Castro Villamizar, Jorge Humberto |
dc.contributor.jury.none.fl_str_mv |
Garcés Pernett, Kelly Johany Pérez Morales, Fredy |
dc.subject.keyword.es_CO.fl_str_mv |
Sistemas autoadaptativos Aprendizaje por refuerzo (Aprendizaje automático) Ingeniería de software |
topic |
Sistemas autoadaptativos Aprendizaje por refuerzo (Aprendizaje automático) Ingeniería de software Ingeniería |
dc.subject.themes.none.fl_str_mv |
Ingeniería |
description |
Context-aware dynamic adaptive systems have the peculiarity of adapting their behavior according to situations gathered from their surrounding environment, for example, information gathered from user actions. However, the larger the system is, the higher the likelihood of situations with multiple possible adaptations to the system base behavior, for such systems foreseeing all possible situations is unfeasible, especially if user interaction is involved. In this thesis, we explore a reinforcement learning approach, to extract these situations, where we validate the thesis with the development of a prototype of a web dynamic public urban transport system. |
publishDate |
2018 |
dc.date.issued.none.fl_str_mv |
2018 |
dc.date.accessioned.none.fl_str_mv |
2020-06-10T09:14:41Z |
dc.date.available.none.fl_str_mv |
2020-06-10T09:14:41Z |
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 |
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http://hdl.handle.net/1992/34625 |
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u808163.pdf |
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repourl:https://repositorio.uniandes.edu.co/ |
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http://hdl.handle.net/1992/34625 |
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u808163.pdf instname:Universidad de los Andes reponame:Repositorio Institucional Séneca repourl:https://repositorio.uniandes.edu.co/ |
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eng |
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eng |
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http://creativecommons.org/licenses/by-nc-nd/4.0/ |
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openAccess |
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14 hojas |
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application/pdf |
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Uniandes |
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Maestría en Ingeniería de Software |
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Facultad de Ingeniería |
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Departamento de Ingeniería de Sistemas y Computación |
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