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Subgroup Detection in Ideological Discussions

机译:意识形态讨论中的亚群检测

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摘要

The rapid and continuous growth of social networking sites has led to the emergence of many communities of communicating groups. Many of these groups discuss ideological and political topics. It is not uncommon that the participants in such discussions split into two or more subgroups. The members of each subgroup share the same opinion toward the discussion topic and are more likely to agree with members of the same subgroup and disagree with members from opposing subgroups. In this paper, we propose an unsupervised approach for automatically detecting discussant subgroups in online communities. We analyze the text exchanged between the participants of a discussion to identify the attitude they carry toward each other and towards the various aspects of the discussion topic. We use attitude predictions to construct an attitude vector for each discussant. We use clustering techniques to cluster these vectors and, hence, determine the subgroup membership of each participant. We compare our methods to text clustering and other baselines, and show that our method achieves promising results.
机译:社交网站的快速且持续增长导致了许多交流团体社区的出现。这些小组中有许多讨论思想和政治话题。此类讨论的参与者分为两个或多个子组并不少见。每个子组的成员对讨论主题都持有相同的观点,并且更有可能同意同一子组的成员,而不同意相反子组的成员。在本文中,我们提出了一种无监督的方法来自动检测在线社区中的讨论者亚组。我们分析了讨论参与者之间交换的文本,以确定他们对彼此以及对讨论主题各个方面的态度。我们使用态度预测为每个讨论者构建态度向量。我们使用聚类技术对这些向量进行聚类,从而确定每个参与者的子组成员身份。我们将我们的方法与文本聚类和其他基线进行了比较,并表明我们的方法取得了可喜的结果。

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