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Leveraging Machine Learning to Automatically Evaluate Cognitive Engagement in Asynchronous Online Discussions

Mon, Oct 16, 1:30 to 2:20pm EDT (1:30 to 2:20pm EDT), Doubletree Main Conference Center - Seminole, Gold Coast II

Short Description

This study focuses on developing machine learning models to automatically evaluate cognitive engagement in asynchronous online discussions. To this end, the bidirectional encoder representations from transformers (BERT) was finetuned and trained, resulting in an accuracy of 72%. The developed model was utilized to evaluate a previously uncoded dataset, which was then analyzed in terms of learning clusters and trajectories. This research demonstrates the potential of using BERT for cognitive engagement assessment.

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