老澳门六合彩开奖记录 faculty and students use machine learning to debunk COVID-19 misinformation

by Matt Jardin  |   

Computer screen displaying ChatGPT
Open AI's ChatGPT generates a response to a prompt for COVID-19 misinformation. At 老澳门六合彩开奖记录, computer science Professor Shawn Butler has been using machine learning to debunk COVID-19 misinformation on social media. Butler鈥檚 efforts are part of the Division of Population Health Sciences and Department of Journalism and Public Communication鈥檚 mission to combat COVID-19 misinformation on public-facing Facebook pages with scientifically accurate information from credited sources through its ongoing Alaska Public Health Information Response Team project. (Photo by James Evans / 老澳门六合彩开奖记录)

Since the launch of the cutting-edge chatbot ChatGPT in late 2022, the potential applications of artificial intelligence and machine learning have dominated the news.

At 老澳门六合彩开奖记录, computer science Professor Shawn Butler, Ph.D., has been using machine learning to debunk COVID-19 misinformation on social media. Butler鈥檚 efforts are part of the Division of Population Health Sciences and Department of Journalism and Public Communication鈥檚 mission to combat COVID-19 misinformation on public-facing Facebook pages with scientifically accurate information from credited sources through its ongoing Alaska Public Health Information Response Team project.

鈥淭he damage done with misinformation, especially on social media, is something we've never seen before,鈥 said Butler. 鈥淲e almost eradicated polio until people started saying they鈥檙e not going to take the vaccine because of something they read online.鈥

Identifying and responding to misinformation on the internet can be a daunting and time-consuming process. So Butler and her team developed a way to use machine learning to assist in automatically identifying COVID-19 misinformation through natural language processing analysis, where a model is fed a data set of text labeled as 鈥渕isinformation鈥 or 鈥渘ot misinformation鈥 with point values assigned to certain keywords or phrases to train the model to identify misinformation that is not labeled.

Currently, Butler鈥檚 model boasts an 80% accuracy rate when identifying misinformation and a 50% accuracy rate when identifying what 颈蝉苍鈥檛 misinformation 鈥 a number she is confident will improve after providing the model with a much larger labeled data set.

Additionally, another model helps determine the effectiveness of the response team鈥檚 efforts by evaluating the change in sentiment of the replies after a member of the team responds to misinformation with accurate information. According to Butler, those resulting conversations indicate a positive change in sentiment. 

Looking ahead, Butler hopes to use machine learning to prebunk misinformation before anyone has the chance to even consider it, bringing to mind the old adage that 鈥渁 lie can travel halfway around the world while the truth is putting on its shoes.鈥

鈥淚n controlled situations, research shows that pre-bunking is more effective than debunking,鈥 said Butler. 鈥淚f somebody knows what the scam is, it鈥檚 easier for them to see it rather than be convinced once they have already fallen for it.鈥

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