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An intelligent learning diagnosis system for Web-based thematic learning platform
Authors:Chenn-Jung Huang  Ming-Chou Liu  San-Shine Chu  Chih-Lun Cheng
Affiliation:aInstitute of Learning Technology, National Hualien Teachers College, 123, Huashi, Hualien 97043, Taiwan
Abstract:This work proposes an intelligent learning diagnosis system that supports a Web-based thematic learning model, which aims to cultivate learners’ ability of knowledge integration by giving the learners the opportunities to select the learning topics that they are interested, and gain knowledge on the specific topics by surfing on the Internet to search related learning courseware and discussing what they have learned with their colleagues. Based on the log files that record the learners’ past online learning behavior, an intelligent diagnosis system is used to give appropriate learning guidance to assist the learners in improving their study behaviors and grade online class participation for the instructor. The achievement of the learners’ final reports can also be predicted by the diagnosis system accurately. Our experimental results reveal that the proposed learning diagnosis system can efficiently help learners to expand their knowledge while surfing in cyberspace Web-based “theme-based learning” model.
Keywords:Web-based learning  Theme-based learning  Fuzzy expert system  K-nearest neighbor  Naï  ve Bayesian classifier  Support vector machines  Learning diagnosis
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