DocumentCode :
3582283
Title :
Students behavioural analysis in an online learning environment using data mining
Author :
Ratnapala, I.P. ; Ragel, R.G. ; Deegalla, S.
Author_Institution :
Fac. of Eng., Univ. of Peradeniya, Peradeniya, Sri Lanka
fYear :
2014
Firstpage :
1
Lastpage :
7
Abstract :
The focus of this research was to use Educational Data Mining (EDM) techniques to conduct a quantitative analysis of students interaction with an e-learning system through instructor-led non-graded and graded courses. This exercise is useful for establishing a guideline for a series of online short courses for them. A group of 412 students´ access behaviour in an e-learning system were analysed and they were grouped into clusters using K-Means clustering method according to their course access log records. The results explained that more than 40% from the student group are passive online learners in both graded and non-graded learning environments. The result showed that the difference in the learning environments could change the online access behaviour of a student group. Clustering divided the student population into five access groups based on their course access behaviour. Among these groups, the least access group (NG-41% and G-42%) and the highest access group (NG-9% and G-5%) could be identified very clearly due to their access variation from the rest of the groups.
Keywords :
computer aided instruction; data mining; pattern clustering; EDM techniques; K-Means clustering method; course access behaviour; e-learning system; educational data mining techniques; graded learning environments; nongraded learning environments; online learning environment; online short courses; passive online learners; student behavioural analysis; Clustering algorithms; Data mining; Data visualization; Databases; Electronic learning; Least squares approximations; Materials; ARFF; CSV; EDM; K-Means; LMS; SDL; SSE; clustering; e-learning;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information and Automation for Sustainability (ICIAfS), 2014 7th International Conference on
Type :
conf
DOI :
10.1109/ICIAFS.2014.7069609
Filename :
7069609
Link To Document :
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