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Get Online Support, Feel Better-Sentiment Analysis and Dynamics in an Online Cancer Survivor Community

机译:在线支持,感受在线癌症幸存者群落中更好的情绪分析和动态

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Many users join online health communities (OHC) to obtain information and seek social support. Understanding the emotional impacts of participation on patients and their informal caregivers is important for OHC managers. Ethnographical observations, interviews, and questionnaires have reported benefits from online health communities, but these approaches are too costly to adopt for large-scale analyses of emotional impacts. A computational approach using machine learning and text mining techniques is demonstrated using data from the American Cancer Society Cancer Survivors Network (CSN), an online forum of nearly a half million posts. This approach automatically estimates the sentiment of forum posts, discovers sentiment change patterns in CSN members, and allows investigation of factors that affect the sentiment change. This first study of sentiment benefits and dynamics in a large-scale health-related electronic community finds that an estimated 75%-85% of CSN forum participants change their sentiment in a positive direction through online interactions with other community members. Two new features, Name and Slang, not previously used in sentiment analysis, facilitate identifying positive sentiment in posts. This work establishes foundational concepts for further studies of sentiment impact of 0HC participation and provides insight useful for the design of new OHC's or enhancement of existing OHCs in providing better emotional support to their members.
机译:许多用户加入在线健康社区(OHC)以获取信息并寻求社会支持。了解参与患者的情感影响及其非正式护理人员对OHC经理非常重要。民族科学观察,访谈和问卷已经报告了在线健康社区的益处,但这些方法对于采用大规模分析的情绪影响来说,这一方法昂贵。使用来自美国癌症协会癌症幸存者网络(CSN)的数据来证明使用机器学习和文本挖掘技术的计算方法,这是一个近半百万个帖子的在线论坛。这种方法自动估计论坛帖子的情绪,发现CSN成员中的情绪变化模式,并允许对影响情绪变化的因素进行调查。这对大规模健康相关电子社区的情感益处和动态的首次研究发现,估计75%-85%的CSN论坛参与者通过与其他社区成员的在线互动,在积极方向上改变他们的情绪。两种新功能,名称和俚语,以前没有用于情感分析,有助于识别帖子中的积极情绪。这项工作为进一步研究0HC参与的情绪影响建立了基础概念,并为新的OCC设计或加强了现有的OCCS提供了对其成员提供更好的情感支持的洞察力。

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