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Using Machine Learning Techniques to Investigate Learner Engagement with TikTok Media Literacy Campaigns

Authors :
Christine Wusylko
Lauren Weisberg
Raymond A. Opoku
Brian Abramowitz
Jessica Williams
Wanli Xing
Teresa Vu
Michelle Vu
Source :
Journal of Research on Technology in Education. 2024 56(1):72-93.
Publication Year :
2024

Abstract

Social media has the unique capacity to expose many learners to media literacy instruction "via" targeted campaigns. Investigating learner engagement and reaction to these efforts may be a fruitful endeavor for researchers that can inform the design of future campaigns. However, the massive datasets associated with social media posts are difficult, and often impossible, to analyze with traditional qualitative methods. This study seeks to address this problem by leveraging machine learning techniques to collect and analyze Big Data from two different media literacy campaigns on the youth-oriented social media platform TikTok. Specifically, we explore the ways topic modeling, sentiment analysis, and network analysis can provide insight into learner engagement with these campaigns and discuss limitations and implications for stakeholders interested in utilizing these approaches.

Details

Language :
English
ISSN :
1539-1523 and 1945-0818
Volume :
56
Issue :
1
Database :
ERIC
Journal :
Journal of Research on Technology in Education
Publication Type :
Academic Journal
Accession number :
EJ1407079
Document Type :
Journal Articles<br />Reports - Research
Full Text :
https://doi.org/10.1080/15391523.2023.2266518