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Departamento Gestión de Conocimiento, Monitoreo y Prospección
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An actionable learning path-based model to predict and describe academic dropout Un modelo accionable basado en el camino de aprendizaje para predecir y describir la deserción académica
Indexado
WoS WOS:001373910600003
Scopus SCOPUS_ID:85201617520
DOI 10.15446/ING.INVESTIG.109389
Año 2024
Tipo artículo de investigación

Citas Totales

Autores Afiliación Chile

Instituciones Chile

% Participación
Internacional

Autores
Afiliación Extranjera

Instituciones
Extranjeras


Abstract



The prediction and explainability of student dropout in degree programs is an important issue, as it impacts students, families, and institutions. Nevertheless, the main efforts in this regard have focused on predictive power, even though explainability is more relevant to decision-makers. The objectives of this work were to propose a novel explainability model to predict dropout, to analyze its descriptive power to provide explanations regarding key configurations in academic trajectories, and to compare the model against other well-known approaches in the literature, including the analysis of the key factors in student dropout. To this effect, academic data from a Computer Science Engineering program was used, as well as three models: (i) a traditional model based on overall indicators of student performance, (ii) a normalized model with overall indicators separated by semester, and (iii) a novel configuration model, which considered the students’ performance in specific sets of courses. The results showed that the configuration model, despite not being the most powerful, could provide accurate early predictions, as well as actionable information through the discovery of critical configurations, which could be considered by program directors could consider when counseling students and designing curricula. Furthermore, it was found that the average grade and rate of passed courses were the most relevant variables in the literature-reported models, and that they could characterize configurations. Finally, it is noteworthy that the development of this new method can be very useful for making predictions, and that it can provide new insights when analyzing curricula and and making better counseling and innovation decisions.

Revista



Revista ISSN
Ingenieria E Investigacion 0120-5609

Métricas Externas



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Disciplinas de Investigación



WOS
Engineering, Multidisciplinary
Scopus
Sin Disciplinas
SciELO
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Publicaciones WoS (Ediciones: ISSHP, ISTP, AHCI, SSCI, SCI), Scopus, SciELO Chile.

Colaboración Institucional



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Autores - Afiliación



Ord. Autor Género Institución - País
1 Olivares-Rodriguez, Cristian Hombre Universidad Alberto Hurtado - Chile
CECTS - Chile
2 Moreno-Marcos, Pedro Manuel Hombre Universidad Carlos III de Madrid - España
Univ Carlos III Madrid - España
3 Scheihing, Eliana Mujer Universidad Austral de Chile - Chile
4 MUNOZ-MERINO, PEDRO JOSE Hombre Universidad Carlos III de Madrid - España
Univ Carlos III Madrid - España
5 Delgado-Kloos, Carlos Hombre Universidad Carlos III de Madrid - España
Univ Carlos III Madrid - España

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Financiamiento



Fuente
European Commission
European Regional Development Fund
Ministerio de Ciencia, Innovacion y Universidades
Agencia Estatal de Investigación
LALA
commission
Florida Polytechnic University

Muestra la fuente de financiamiento declarada en la publicación.

Agradecimientos



Agradecimiento
This work was partially funded by the LALA project (grant 586120-EPP-1-2017-1-ES-EPPKA2-CBHE-JP), by FEDER/Ministerio de Ciencia, Innovaci\u00F3n y Universidades \u2013 Agencia Estatal de Investigaci\u00F3n through project H2O Learn (grant PID2020-112584RB-C31), and by the Spanish Ministry of Science, Innovation, and Universities under an FPU fellowship (FPU016/00526). The LALA project has been funded with support from the European Commission. This publication only reflects the views of the authors, and the Commission and the Agency, as well as other funding entities, cannot be held responsible for any use of the information contained therein.
This work was partially funded by the LALA project (grant 586120-EPP-1-2017-1-ES-EPPKA2-CBHE-JP), by FEDER/Ministerio de Ciencia, Innovaci\u00F3n y Universidades \u2013 Agencia Estatal de Investigaci\u00F3n through project H2O Learn (grant PID2020-112584RB-C31), and by the Spanish Ministry of Science, Innovation, and Universities under an FPU fellowship (FPU016/00526). The LALA project has been funded with support from the European Commission. This publication only reflects the views of the authors, and the Commission and the Agency, as well as other funding entities, cannot be held responsible for any use of the information contained therein.
This work was partially funded by the LALA project (grant 586120-EPP-1-2017-1-ES-EPPKA2-CBHE-JP) , by FEDER/Ministerio de Ciencia, Innovacion y Universidades - Agencia Estatal de Investigacion through project H2O Learn (grant PID2020-112584RB-C31) , and by the Spanish Ministry of Science, Innovation, and Universities under an FPU fellowship (FPU016/00526) . The LALA project has been funded with support from the European Commission.This publication only reflects the views of the authors, and the Commission and the Agency, as well as other funding entities, cannot be held responsible for any use of the information contained therein.r This publication only reflects the views of the authors, and the Commission and the Agency, as well as other funding entities, cannot be held responsible for any use of the information contained therein.

Muestra la fuente de financiamiento declarada en la publicación.