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The Clustering Analysis System Based on Students' Motivation and Learning Behavior
Conference paper

The Clustering Analysis System Based on Students' Motivation and Learning Behavior

Huang Nen-Fu, Hsu I-Hsien, Lee Chia-An, Chen Hsiang-Chun, Tzeng Jian-Wei and Fang Tung-Te
Proceedings of 2018 Learning With MOOCS, LWMOOCS 2018, pp.117-119
11/2018

Abstract

Educational Data Mining Engagement Analysis K-Means clustering MOOCs MOOCs Learning Analysis Computer Networks and Communications Computer Science Applications Education
MOOCs offer a wide range of courses and include high-quality video lectures that feature professors from universities across the world. Such innovative use of video-based learning has attracted attention from researchers and practitioners in the education field. Therefore, we conducted questionnaire surveys to obtain student learning motivations and learning styles during such a course. The purpose of this study is to propose a method that can use questionnaire results and predefined group types to classify students in the early stages of a class. We found a link between learning motivation and learning behavior. As the class progressed, we executed a daily clustering system. The questionnaire results provided only a preliminary reference which forms the basis for student grouping. With a greater sample, we could also better optimize the definition of groups and add new groups.

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