Predicting Time to Graduation of Open University Students: An Educational Data Mining Study

Abstract: The world’s move to a global economy has an impact on the high rate of student academic failure. Higher education, as the affected party, is considered crucial in reducing student academic failure. This study aims to construct a prediction (predictive model) that can forecast students’ time to graduation in developing countries such as Indonesia, as well as the essential factors (attributes) that can explain it. This research used a data mining method. The data set used in this study is from an Indonesian university and contains demographic and academic records of 132,734 students. Demographic data (age, gender, marital status, employment, region, and minimum wage) and academic (i.e., grade point average (GPA)) were utilized as predictors of students’ time to graduation. The findings of this study show that (1) the prediction model using the random forest and neural networks algorithms has the highest classification accuracy (CA), and area under the curve (AUC) value in predicting students’ time to graduation (CA: 76% and AUC: 79%) compared to other models such as logistic regression, Naïve Bayes, and k-nearest neighbor; and (2) the most critical variable in predicting students’ time to graduation along with six other important variables is the student’s GPA.

Location
Deutsche Nationalbibliothek Frankfurt am Main
Extent
Online-Ressource
Language
Englisch

Bibliographic citation
Predicting Time to Graduation of Open University Students: An Educational Data Mining Study ; volume:6 ; number:1 ; year:2024 ; extent:14
Open education studies ; 6, Heft 1 (2024) (gesamt 14)

Creator
Santoso, Agus
Retnawati, Heri
Kartianom
Apino, Ezi
Rafi, Ibnu
Rosyada, Munaya Nikma

DOI
10.1515/edu-2022-0220
URN
urn:nbn:de:101:1-2024022013082373463929
Rights
Open Access; Der Zugriff auf das Objekt ist unbeschränkt möglich.
Last update
14.08.2025, 10:54 AM CEST

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Associated

  • Santoso, Agus
  • Retnawati, Heri
  • Kartianom
  • Apino, Ezi
  • Rafi, Ibnu
  • Rosyada, Munaya Nikma

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