Application of decision trees for the identification of adaptability of students in online education

Descripción del Articulo

Due to the global pandemic by Covid-19, online education was established in student learning. However, the effectiveness of this modality, as well as the adaptability of the students, is something that may depend on some factors. In this sense, this research article presents a description of the use...

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Detalles Bibliográficos
Autores: Araoz Valencia, Luis Emanuel, Huaracha Condori, Walter, Quispe Quicaña, Víctor Raúl, Turpo Coila, Alex Ronaldo
Formato: artículo
Fecha de Publicación:2023
Institución:Universidad La Salle
Repositorio:Revistas - Universidad La Salle
Lenguaje:español
OAI Identifier:oai:ojs.revistas.ulasalle.edu.pe:article/113
Enlace del recurso:https://revistas.ulasalle.edu.pe/innosoft/article/view/113
https://doi.org/10.48168/innosoft.s12.a113
https://purl.org/42411/s12/a113
https://n2t.net/ark:/42411/s12/a113
Nivel de acceso:acceso abierto
Materia:Artificial Intelligence
Machine Learning
decision trees
Python
classification
online education
Inteligencia artificial
aprendizaje automático
árboles de decisión
clasificación
educación en línea
Descripción
Sumario:Due to the global pandemic by Covid-19, online education was established in student learning. However, the effectiveness of this modality, as well as the adaptability of the students, is something that may depend on some factors. In this sense, this research article presents a description of the use of decision trees to determine the adaptability of students in online education, using a dataset of 1205 records with data such as the type of connection and internet, device, condition. financial, among other important data. Likewise, tools such as Google Colab, Python and popular libraries were used in similar works of Artificial Intelligence and Machine Learning.
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