On Modeling LMS Users' Quality of Interaction Using Temporal Convolutional Neural Networks.

TECH-EDU(2022)

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摘要
Learning Management Systems (LMSs) have been widely employed following the Covid-19 pandemic. The user modeling of LMS including educators and learners is a point of interest for Higher Education Institutions (HEI), stakeholders and system users. In this work user's engagement with LMS is modeled using the Quality of Interaction (QoI) indicator under a combined approach of blended and collaborative learning. The present research extends the previous work of 'Fuzzy QoI' and 'DeepLMS' to develop a generalized model that substitutes the fuzzy logic system with a deep learning model. In this line, Temporal Convolutional Neural Networks (T-CNN) were used to predict QoI, achieving MAE (0.027), RMSE (0.066) and R2 (0.698). The feedback received from the T-CNN model provides insights to educators and stakeholders in order to enhance the pedagogical experience.
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关键词
Learning Management Systems (LMSs), Quality of Interaction (QoI), Temporal Convolutional Neural Networks (T-CNN)
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