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Automatic Classification of Forum Posts: A Finnish Online Health Discussion Forum Case

机译:自动分类论坛帖子:芬兰在线健康讨论论坛案例

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Online health discussion forums play a key role in accessing, distributing and exchanging health information at an individual and societal level. Due to their free nature, using and regulating these forums require substantial amount of manual effort. In this study, we propose a computational approach, i.e., a machine learning framework, in order to categorize the messages from Finland's largest online health discussion forum into 16 categories. An accuracy of 70.8% was obtained with a Naive Bayes classifier, applied on term frequency-inverse document frequency features.
机译:在线健康讨论论坛在个人和社会层面访问,分发和交换健康信息方面发挥着关键作用。由于他们的自由性,使用和调节这些论坛需要大量的手动努力。在这项研究中,我们提出了一种计算方法,即机器学习框架,以便将来自芬兰最大的在线健康讨论论坛的消息分类为16类。使用Naive Bayes分类器获得70.8%的精度,在术语频率 - 逆文档频率特征上应用。

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