YouTube Videos for Public Health Literacy? A Machine Learning Pipeline to Curate Covid-19 Videos
November 21, 2023 Β· Declared Dead Β· π Medinfo
"No code URL or promise found in abstract"
Evidence collected by the PWNC Scanner
Authors
Yawen Guo, Xiao Liu, Anjana Susarla, Rema Padman
arXiv ID
2312.09425
Category
cs.IR: Information Retrieval
Citations
4
Venue
Medinfo
Last Checked
4 months ago
Abstract
The COVID-19 pandemic has highlighted the dire necessity to improve public health literacy for societal resilience. YouTube, the largest video-sharing social media platform, provides a vast repository of user-generated health information in a multi-media-rich format which may be easier for the public to understand and use if major concerns about content quality and accuracy are addressed. This study develops an automated solution to identify, retrieve and shortlist medically relevant and understandable YouTube videos that domain experts can subsequently review and recommend for disseminating and educating the public on the COVID-19 pandemic and similar public health outbreaks. Our approach leverages domain knowledge from human experts and machine learning and natural language processing methods to provide a scalable, replicable, and generalizable approach that can also be applied to enhance the management of many health conditions.
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