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Discovering Habits of Effective Online Support Group Chatrooms

机译:发现有效的在线支持小组聊天室的习惯

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For users of online support; groups, prior research has suggested that a positive social environment; is a key enabler of coping. Typically, demonstrating such claims about social interaction would be approached through the lens of sentiment analysis. In this work, we argue instead for a inul-tifaceted view of emotional state, which incorporates both a static view of emotion (sentiment) with a dynamic view based on the behaviors present in a text. We codify this dynamic view through data annotations marking information sharing, sentiment, and coping efficacy. Through machine learning analysis of these annotations, we demonstrate that while sentiment predicts a user's stress at the beginning of a chat, dynamic views of efficacy are stronger indicators of stress reduction.
机译:对于在线支持的用户;团体,先前的研究表明存在积极的社会环境;是应对的关键因素。通常,将通过情感分析的角度来论证这种关于社会互动的主张。在这项工作中,我们主张使用情感状态的全方位视图,其中结合了基于文本行为的动态视图(情感)和静态视图(情感)。我们通过标记信息共享,情感和应对效果的数据注释来编纂此动态视图。通过对这些注释的机器学习分析,我们证明了虽然情绪可以预测聊天开始时用户的压力,但动态的功效观是减轻压力的更强指标。

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