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Intelligent Database Systems Lab 國立雲林科技大學 National Yunlin University of Science and Technology 1 Automatic Recommendations for E-Learning Personalization.

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Presentation on theme: "Intelligent Database Systems Lab 國立雲林科技大學 National Yunlin University of Science and Technology 1 Automatic Recommendations for E-Learning Personalization."— Presentation transcript:

1 Intelligent Database Systems Lab 國立雲林科技大學 National Yunlin University of Science and Technology 1 Automatic Recommendations for E-Learning Personalization Based on Web Usage Mining Techniques and Information Retrieval Presenter : Cheng-Han Tsai Authors : Mohamed Koutheair Khribi, Mohamed Jemni, Olfa Nasraoui ETS, 2009

2 Intelligent Database Systems Lab N.Y.U.S.T. I. M. 2 Outlines Motivation Objectives Methodology Experiments Conclusions Comments

3 Intelligent Database Systems Lab N.Y.U.S.T. I. M. 3 Motivation  Most e-learning platforms are still delivering the same educational resources to learners  Most e-learning platforms have not been personalized

4 Intelligent Database Systems Lab N.Y.U.S.T. I. M. Objectives 4  To build an automatic recommendations in e- learning platforms

5 Intelligent Database Systems Lab N.Y.U.S.T. I. M. 5 Methodology offline online Content models Learner model CF + KNN & CBF + TF-IDF CF & Cosine Similarity & Apriori algorithm & Association Rules & Confidence CBF & LOM & Inverted Index

6 Intelligent Database Systems Lab N.Y.U.S.T. I. M. Methodology 6 Learner model Confidence

7 Intelligent Database Systems Lab N.Y.U.S.T. I. M. Methodology  Using the open source search engine Nutch in content model- ing followed by CBF  Automatically generates invert- ed index 7 Content model

8 Intelligent Database Systems Lab N.Y.U.S.T. I. M. Methodology 8

9 Intelligent Database Systems Lab N.Y.U.S.T. I. M. Experiments 9

10 Intelligent Database Systems Lab N.Y.U.S.T. I. M. Experiments 10

11 Intelligent Database Systems Lab N.Y.U.S.T. I. M. Conclusions  The proposed approaches can provide adaptive learning objects to different users  The recommendation system can compute against massive repository of educational resources in "real time". 11

12 Intelligent Database Systems Lab N.Y.U.S.T. I. M. 12 Comments  Advantages ─ Integration of many approaches in this paper  Applications ─ IR


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