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通过社交媒体情绪分析评估错误信息对公众关于堕胎可及性的看法的影响。

Evaluating the Effects of Misinformation on Public Sentiments Surrounding Access to Abortion Through Social Media Sentiment Analytics.

机构信息

Center for Biomedical Informatics, Department of Pediatrics, College of Medicine, University of Tennessee Health Science Center, Memphis, Tennessee, USA.

出版信息

Stud Health Technol Inform. 2023 Oct 20;309:304-305. doi: 10.3233/SHTI230805.

Abstract

As social media use has grown in recent years, ease of access and rapid data collection through online social media has permitted researchers to measure and track sentiments related to emerging public health threats. Herein, we explore the possibilities of examining messaging shared via social media networks for sentiment classification as it relates to women's reproductive healthcare, especially access to abortion. In our previous works, our team has successfully employed various natural language processing (NLP) models for the analysis of social media shared sentiments. This study reports a work-in-progress on the similar use of fine-tuned NLPs (i.e., DistilRoBERTa) to collect/analyze the sentiments of socio-behavioral data shared via social networks to uncover a correlation between reproductive-related misinformation (i.e., access to abortion) and public sentiments/discourse direction.

摘要

近年来,随着社交媒体的使用日益普及,通过在线社交媒体轻松访问和快速收集数据,使得研究人员能够衡量和跟踪与新出现的公共卫生威胁相关的情绪。在此,我们探讨了通过社交媒体网络检查信息共享的情绪分类的可能性,因为它与妇女的生殖保健有关,特别是与堕胎的机会有关。在我们之前的工作中,我们的团队已经成功地运用了各种自然语言处理(NLP)模型来分析社交媒体上的情绪。本研究报告了一项正在进行的工作,即使用微调的 NLP(即 DistilRoBERTa)来收集/分析通过社交网络共享的社会行为数据的情绪,以揭示生殖相关错误信息(即堕胎机会)和公众情绪/话语方向之间的相关性。

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