Machine Learning Based Learner Modeling for Adaptive Web-Based Learning
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Date
Authors
Aslan, Burak Galip
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Green Open Access
Yes
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No
Abstract
Especially in the first decade of this century, learner adapted interaction and learner modeling are becoming more important in the area of web-based learning systems. The complicated nature of the problem is a serious challenge with vast amount of data available about the learners. Machine learning approaches have been used effectively in both user modeling, and learner modeling implementations. Recent studies on the challenges and solutions about learner modeling are explained in this paper with the proposal of a learner modeling framework to be used in a web-based learning system. The proposed system adopts a hybrid approach combining three machine learning techniques in three stages.
Description
International Conference on Computational Science and its Applications, ICCSA 2007; Kuala Lumpur; Malaysia; 26 August 2007 through 29 August 2007
Keywords
Adaptive web-based learning, Learner modeling, Machine learning, Learning systems, Interactive computer systems, Adaptive web-based learning, Interactive computer systems, machine learning, Learner modeling, adaptive web-based learning, Learning systems, Machine learning, learner modeling
Fields of Science
05 social sciences, 0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology, 0503 education
Citation
Aslan, B. G., and İnceoğlu, M. M. (2007). Machine learning based learner modeling for adaptive web-based learning. Lecture Notes in Computer Science, 4705 LNCS(PART 1), 1133-1145. doi:10.1007/978-3-540-74472-6_94
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OpenCitations Citation Count
3
Volume
4705 LNCS
Issue
PART 1
Start Page
1133
End Page
1145
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Scopus : 5
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