JOURNAL ARTICLE

Students' learning style detection using tree augmented naive Bayes

Ling Xiao LiSiti Soraya Abdul Rahman

Year: 2018 Journal:   Royal Society Open Science Vol: 5 (7)Pages: 172108-172108   Publisher: Royal Society

Abstract

Students are characterized according to their own distinct learning styles. Discovering students' learning style is significant in the educational system in order to provide adaptivity. Past researches have proposed various approaches to detect the students’ learning styles. Among all, the Bayesian network has emerged as a widely used method to automatically detect students' learning styles. On the other hand, tree augmented naive Bayesian network has the ability to improve the naive Bayesian network in terms of better classification accuracy. In this paper, we evaluate the performance of the tree augmented naive Bayesian in automatically detecting students’ learning style in the online learning environment. The experimental results are promising as the tree augmented naive Bayes network is shown to achieve higher detection accuracy when compared to the Bayesian network.

Keywords:
Naive Bayes classifier Machine learning Bayesian network Computer science Artificial intelligence Tree (set theory) Learning styles Bayesian programming Bayesian probability Decision tree Variable-order Bayesian network Bayesian inference Support vector machine Mathematics

Metrics

49
Cited By
10.17
FWCI (Field Weighted Citation Impact)
29
Refs
0.96
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Online Learning and Analytics
Physical Sciences →  Computer Science →  Computer Science Applications
Learning Styles and Cognitive Differences
Social Sciences →  Psychology →  Developmental and Educational Psychology
Intelligent Tutoring Systems and Adaptive Learning
Physical Sciences →  Computer Science →  Artificial Intelligence

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