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Microblog credibility indicators regarding misinformation of genetically modified food on Weibo

机译:关于微博对转基因食品的错误信息的微博可信度指标

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The considerable amount of misinformation on social media regarding genetically modified (GM) food will not only hinder public understanding but also mislead the public to make unreasoned decisions. This study discovered a new mechanism of misinformation diffusion in the case of GM food and applied a framework of supervised machine learning to identify effective credibility indicators for the misinformation prediction of GM food. Main indicators are proposed, including user identities involved in spreading information, linguistic styles, and propagation dynamics. Results show that linguistic styles, including sentiment and topics, have the dominant predictive power. In addition, among the user identities, engagement, and extroversion are effective predictors, while reputation has almost no predictive power in this study. Finally, we provide strategies that readers should be aware of when assessing the credibility of online posts and suggest improvements that Weibo can use to avoid rumormongering and enhance the science communication of GM food.
机译:关于转基因(GM)食品的社交媒体的相当数量的错误信息不仅会阻碍公众的理解,而且误导了公众做出无理决策。本研究发现了在转基因食物的情况下发现了一个新的错误信息扩散机制,并应用了监督机器学习框架,以确定转基因食物的错误信息预测的有效可信度指标。提出了主要指标,包括参与传播信息,语言样式和传播动态的用户身份。结果表明,语言风格,包括情绪和主题,具有主导的预测力。此外,在用户身份中,参与和促进是有效的预测因子,而声誉几乎在本研究中几乎没有预测力。最后,我们提供较战的策略,即读者在评估在线职位的可信度并建议改进我们可以用来避免谣言,并加强转基因食物的科学传播。

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