Modelo de retención universitaria: Un enfoque de Machine Learning.

University retention has become a globally recognized phenomenon, due to its complexity and multiple causes that must be addressed in the university environment; the decrease in its rates generates academic and management difficulties for Higher Education Institutions. It is considered important to...

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Hlavní autor: Urgiles Urgiles, José Luis (author)
Další autoři: Vásquez Mullo, Marcia Salome (author)
Médium: bachelorThesis
Jazyk:spa
Vydáno: 2020
Témata:
On-line přístup:http://repositorio.utc.edu.ec/handle/27000/8608
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author Urgiles Urgiles, José Luis
author2 Vásquez Mullo, Marcia Salome
author2_role author
author_facet Urgiles Urgiles, José Luis
Vásquez Mullo, Marcia Salome
author_role author
collection Repositorio Universidad Técnica de Cotopaxi
dc.contributor.none.fl_str_mv Albán, Mayra
dc.creator.none.fl_str_mv Urgiles Urgiles, José Luis
Vásquez Mullo, Marcia Salome
dc.date.none.fl_str_mv 2020-09
2022-06-09T19:47:28Z
2022-06-09T19:47:28Z
dc.format.none.fl_str_mv 97 páginas
application/pdf
dc.identifier.none.fl_str_mv Urgiles Urgiles José Luis, Vásquez Mullo Marcia Salome (2020), Modelo de retención universitaria: Un enfoque de Machine Learning. UTC. Latacunga. 97 p.
PI-001942
http://repositorio.utc.edu.ec/handle/27000/8608
dc.language.none.fl_str_mv spa
dc.publisher.none.fl_str_mv Ecuador: Latacunga: Universidad Técnica de Cotopaxi (UTC).
dc.rights.none.fl_str_mv http://creativecommons.org/licenses/by-nc-sa/3.0/ec/
info:eu-repo/semantics/openAccess
dc.source.none.fl_str_mv reponame:Repositorio Universidad Técnica de Cotopaxi
instname:Universidad Técnica de Cotopaxi
instacron:UTC
dc.subject.none.fl_str_mv RETENCIÓN DE ESTUDIANTES
MACHINE LEARNING
CLÚSTER
REDES NEURONALES
SISTEMAS
dc.title.none.fl_str_mv Modelo de retención universitaria: Un enfoque de Machine Learning.
dc.type.none.fl_str_mv info:eu-repo/semantics/publishedVersion
info:eu-repo/semantics/bachelorThesis
description University retention has become a globally recognized phenomenon, due to its complexity and multiple causes that must be addressed in the university environment; the decrease in its rates generates academic and management difficulties for Higher Education Institutions. It is considered important to analyze retention issues as a means of mitigating problems that affect the student and that allow the successful completion of a career. For this reason, a model is proposed to identify university student retention factors based on the application of Machine Learnign techniques. The data is obtained from an information survey process through a survey of 294 students from a public university in Ecuador, for the development of research the Knowledge Discovery in Database (KDD) methodology and supervised learning algorithms with neural networks are used. The results allow to design a conceptual model based on 7 factors that influence the retention of students in universities in universities using Linear Regression. For the prediction, Cluster and Neural Networks algorithms were used, resulting in an accuracy rate of the proposed models of 94.2% with the Multilayer Perceptrom model, which allows to determine that the research developed is based under the experimental procedure that checks the validity of the proposed conceptual model.
eu_rights_str_mv openAccess
format bachelorThesis
id UTC_2413effef7ca4b019a22ff8d3bbe260b
identifier_str_mv Urgiles Urgiles José Luis, Vásquez Mullo Marcia Salome (2020), Modelo de retención universitaria: Un enfoque de Machine Learning. UTC. Latacunga. 97 p.
PI-001942
instacron_str UTC
institution UTC
instname_str Universidad Técnica de Cotopaxi
language spa
network_acronym_str UTC
network_name_str Repositorio Universidad Técnica de Cotopaxi
oai_identifier_str oai:repositorio.utc.edu.ec:27000/8608
publishDate 2020
publisher.none.fl_str_mv Ecuador: Latacunga: Universidad Técnica de Cotopaxi (UTC).
reponame_str Repositorio Universidad Técnica de Cotopaxi
repository.mail.fl_str_mv .
repository.name.fl_str_mv Repositorio Universidad Técnica de Cotopaxi - Universidad Técnica de Cotopaxi
repository_id_str 0
rights_invalid_str_mv http://creativecommons.org/licenses/by-nc-sa/3.0/ec/
spelling Modelo de retención universitaria: Un enfoque de Machine Learning.Urgiles Urgiles, José LuisVásquez Mullo, Marcia SalomeRETENCIÓN DE ESTUDIANTESMACHINE LEARNINGCLÚSTERREDES NEURONALESSISTEMASUniversity retention has become a globally recognized phenomenon, due to its complexity and multiple causes that must be addressed in the university environment; the decrease in its rates generates academic and management difficulties for Higher Education Institutions. It is considered important to analyze retention issues as a means of mitigating problems that affect the student and that allow the successful completion of a career. For this reason, a model is proposed to identify university student retention factors based on the application of Machine Learnign techniques. The data is obtained from an information survey process through a survey of 294 students from a public university in Ecuador, for the development of research the Knowledge Discovery in Database (KDD) methodology and supervised learning algorithms with neural networks are used. The results allow to design a conceptual model based on 7 factors that influence the retention of students in universities in universities using Linear Regression. For the prediction, Cluster and Neural Networks algorithms were used, resulting in an accuracy rate of the proposed models of 94.2% with the Multilayer Perceptrom model, which allows to determine that the research developed is based under the experimental procedure that checks the validity of the proposed conceptual model.La retención universitaria se ha convertido en un fenómeno reconocido mundialmente, debido a su complejidad y múltiples causas que deben ser tratadas en el entorno universitario, la disminución de sus tasas genera dificultades de orden académico y de gestión para las Instituciones de Educación Superior. Se considera importante analizar los temas de retención como medio para mitigar problemas que afectan al estudiante y que permita la culminación con éxito de una carrera profesional. Por tal razón, se propone un modelo para identificar factores de retención estudiantil universitaria basada en la aplicación de técnicas de Machine Learnign. Los datos se obtienen de un proceso de levantamiento de información por medio de una encuesta a 294 estudiantes de una universidad pública del Ecuador, para el desarrollo de la investigación se utiliza la metodología Knowledge Discovery in Database (KDD) y algoritmos de aprendizaje supervisado como redes neuronales. Los resultados permiten diseñar un modelo conceptual basado en 7 factores que influyen en la retención de los estudiantes en las universidades utilizando Regresión Lineal. Para el proceso de predicción se utilizó algoritmos Clúster y Redes Neuronales, dando como resultado una tasa de precisión del 94.2% con el modelo Multilayer Perceptrom, lo que permite determinar que la investigación desarrollada se sustenta bajo el procedimiento experimental que comprueba la validez del modelo conceptual propuesto.Ecuador: Latacunga: Universidad Técnica de Cotopaxi (UTC).Albán, Mayra2022-06-09T19:47:28Z2022-06-09T19:47:28Z2020-09info:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/bachelorThesis97 páginasapplication/pdfUrgiles Urgiles José Luis, Vásquez Mullo Marcia Salome (2020), Modelo de retención universitaria: Un enfoque de Machine Learning. UTC. Latacunga. 97 p.PI-001942http://repositorio.utc.edu.ec/handle/27000/8608spahttp://creativecommons.org/licenses/by-nc-sa/3.0/ec/info:eu-repo/semantics/openAccessreponame:Repositorio Universidad Técnica de Cotopaxiinstname:Universidad Técnica de Cotopaxiinstacron:UTC2022-06-10T08:00:55Zoai:repositorio.utc.edu.ec:27000/8608Institucionalhttp://repositorio.utc.edu.ec/Universidad públicahttps://www.utc.edu.ec/..Ecuador...opendoar:02026-03-08T03:39:08.245295Repositorio Universidad Técnica de Cotopaxi - Universidad Técnica de Cotopaxitrue
spellingShingle Modelo de retención universitaria: Un enfoque de Machine Learning.
Urgiles Urgiles, José Luis
RETENCIÓN DE ESTUDIANTES
MACHINE LEARNING
CLÚSTER
REDES NEURONALES
SISTEMAS
status_str publishedVersion
title Modelo de retención universitaria: Un enfoque de Machine Learning.
title_full Modelo de retención universitaria: Un enfoque de Machine Learning.
title_fullStr Modelo de retención universitaria: Un enfoque de Machine Learning.
title_full_unstemmed Modelo de retención universitaria: Un enfoque de Machine Learning.
title_short Modelo de retención universitaria: Un enfoque de Machine Learning.
title_sort Modelo de retención universitaria: Un enfoque de Machine Learning.
topic RETENCIÓN DE ESTUDIANTES
MACHINE LEARNING
CLÚSTER
REDES NEURONALES
SISTEMAS
url http://repositorio.utc.edu.ec/handle/27000/8608