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Public Health and Social Media: Language Analysis of Vaccine Conversations

机译:公共卫生和社交媒体:疫苗谈话的语言分析

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Social media have brought undoubted benefits to our life, but when people use them to make health decisions, a threat for the whole society might arise. For instance, different studies showed a correlation between the increasing usage of social media to discuss about vaccination and the decreasing vaccination coverage, which leads to outbreaks of preventable diseases. The goal of this paper is to understand specific features of the language used to talk about vaccinations on social media platforms. First, we define four different linguistic and psychological categories of messages: (i) affective (e.g., anger and anxiety), (ii) social (e.g., family and entity), (iii) medical (e.g., disease and vaccine-preventable diseases), and (iv) biological (e.g., body and health-related language). Then, we develop a Python-based tool able to map more than 200.000 messages found on Italian Facebook groups that converse about vaccinations into the defined categories. The obtained results show that anti vaccination groups use a language that is difficult to refute (e.g., not anxious, not focused on specific health issues or on specific diseases), whereas the analysis of pro vaccination groups reveals much more anxiety and specificity (e.g., family cases, specific diseases or vaccines). These results might help health professionals to stop the negative vaccination coverage trend, as they allow them to produce social media contents with linguistic and psychological features suitable to contrast partial/misleading information.
机译:社交媒体对我们的生活带来了毫无疑问的益处,但当人们使用他们要做出健康决策时,可能会出现对整个社会的威胁。例如,不同的研究表明,社交媒体的增加与疫苗接种和减少疫苗接种覆盖率之间的相关性之间的相关性,这导致可预防疾病的爆发。本文的目标是了解用于谈论社交媒体平台疫苗的语言的特定功能。首先,我们定义四种不同的语言和心理类别的信息:(i)情感(例如,愤怒和焦虑),(ii)社会(例如,家庭和实体),(iii)医疗(例如,疾病和疫苗可预防的疾病)和(iv)生物学(例如,身体和健康有关的语言)。然后,我们开发一个基于Python的工具,能够在意大利语Facebook组上映射超过200.000消息,这些邮件在意大利语Facebook组中讨论疫苗接种到已定义的类别。得到的结果表明,抗疫苗接种组使用难以反驳的语言(例如,不担心,不关注特定的健康问题或特定疾病),而Pro疫苗接种组的分析显示出更多的焦虑和特异性(例如,家用病例,特定疾病或疫苗)。这些结果可能有助于卫生专业人员阻止负面疫苗接种覆盖趋势,因为它们允许它们以适合对比部分/误导信息的语言和心理特征生成社交媒体内容。

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