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The online video-based tutoring industry is growing fast but there is a lack of interaction between student and tutor. Some survey studies suggest that interactive video-based tutoring like giving bookmarks, hints, nudges, and quizzes in between video lectures helps the student in improving concentration and learning. We propose an interactive video tutoring module which given a student profile and past behavior (in different videos), predict the time points where a student would pause a video (or bookmark it), speed up or return to a video after exercise, or a combination of these. This can be formulated as a bookmark recommendation system and a standard approach to solve this problem is Collaborative Filtering. We will use a baseline based on matrix factorization, which is a class of collaborative filtering algorithm. Later, we aim to experiment with more advanced techniques that may use deep learning.
Ioannis Mitliagkas
Korbit Technologies
Computer science
Information and cultural industries
Université de Montréal
Accelerate
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