Online Self-Disclosure, Social Support, and User Engagement During the COVID-19 Pandemic

Jooyoung Lee, Sarah Rajtmajer, Eesha Srivatsavaya, Shomir Wilson
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Abstract

We investigate relationships between online self-disclosure and received social support and user engagement during the COVID-19 crisis. We crawl a total of 2,399 posts and 29,851 associated comments from the r/COVID19_support subreddit and manually extract fine-grained personal information categories and types of social support sought from each post. We develop a BERT-based ensemble classifier to automatically identify types of support offered in users’ comments. We then analyze the effect of personal information sharing and posts’ topical, lexical, and sentiment markers on the acquisition of support and five interaction measures (submission scores, the number of comments, the number of unique commenters, the length and sentiments of comments). Our findings show that: 1) users were more likely to share their age, education, and location information when seeking both informational and emotional support, as opposed to pursuing either one; 2) while personal information sharing was positively correlated with receiving informational support when requested, it did not correlate with emotional support; 3) as the degree of self-disclosure increased, information support seekers obtained higher submission scores and longer comments, whereas emotional support seekers’ self-disclosure resulted in lower submission scores, fewer comments, and fewer unique commenters; 4) post characteristics affecting audience response differed significantly based on types of support sought by post authors. These results provide empirical evidence for the varying effects of self-disclosure on acquiring desired support and user involvement online during the COVID-19 pandemic. Furthermore, this work can assist support seekers hoping to enhance and prioritize specific types of social support and user engagement.
COVID-19大流行期间的在线自我披露、社会支持和用户参与
我们调查了COVID-19危机期间在线自我披露与获得的社会支持和用户参与度之间的关系。我们从r/COVID19_support子reddit上抓取了2399篇帖子和29851条相关评论,并手动提取了细粒度的个人信息类别和从每个帖子中寻求的社会支持类型。我们开发了一个基于bert的集成分类器来自动识别用户评论中提供的支持类型。然后,我们分析了个人信息共享和帖子的主题、词汇和情感标记对获得支持和五种交互测量(提交分数、评论数量、唯一评论数量、评论长度和情感)的影响。我们的研究结果表明:1)用户在寻求信息和情感支持时更有可能分享他们的年龄、教育和位置信息,而不是追求其中任何一个;2)个人信息共享与请求时获得信息支持正相关,与情感支持不相关;(3)随着自我表露程度的增加,信息支持寻求者的提交分数越高,评论越长,情感支持寻求者的提交分数越低,评论越少,唯一评论越少;4)不同支持类型的帖子特征对受众反应的影响差异显著。这些结果为COVID-19大流行期间自我披露对获得所需支持和用户在线参与的不同影响提供了经验证据。此外,这项工作可以帮助寻求支持的人希望加强和优先考虑特定类型的社会支持和用户参与。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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