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Grouping Like-Minded Users Based on Text and Sentiment Analysis

机译:基于文本和情感分析的志趣相投的用户分组

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With the growth of social media usage, the study of online communities and groups has become an appealing research domain. In this context, grouping like-minded users is one of the emerging problems. Indeed, it gives a good idea about group formation and evolution, explains various social phenomena and leads to many applications, such as link prediction and product suggestion. In this dissertation, we propose a novel unsupervised method for grouping like-minded users within social networks. Such a method detects groups of users sharing the same interest centers and having similar opinions. In fact, the proposed method is based on extracting the interest centers and retrieving the polarities from the user's textual posts.
机译:随着社交媒体使用率的增长,在线社区和群体的研究已成为一个吸引人的研究领域。在这种情况下,对志趣相投的用户进行分组是新出现的问题之一。的确,它提供了有关组形成和演化的好主意,解释了各种社会现象并导致了许​​多应用,例如链接预测和产品建议。本文针对社交网络中志趣相投的用户,提出了一种新颖的无监督方法。这种方法检测共享相同兴趣中心并具有相似意见的用户组。实际上,所提出的方法是基于提取兴趣中心并从用户的文本帖子中检索极性。

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