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Social influence analysis in microblogging platforms – A topic-sensitive based approach

机译:微博平台中的社会影响分析–基于主题敏感的方法

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The use of Social Media, particularly microblogging platforms such as Twitter, has proven to be an effective channel for promoting ideas to online audiences. In a world where information can bias public opinion it is essential to analyse the propagation and influence of information in large-scale networks. Recent research studying social media data to rank users by topical relevance have largely focused on the "retweet", "following" and "mention" relations. In this paper we propose the use of semantic profiles for deriving influential users based on the retweet subgraph of the Twitter graph.We introduce a variation of the PageRank algorithm for analysing users' topical and entity influence based on the topical/entity relevance of a retweet relation. Experimental results show that our approach outperforms related algorithms including HITS, InDegree and Topic-Sensitive PageRank. We also introduce VisInfluence, a visualisation platform for presenting top influential users based on a topical query need.
机译:事实证明,使用社交媒体(尤其是Twitter之类的微博平台)是向在线受众推广想法的有效渠道。在当今信息可能使公众产生偏见的世界中,分析信息在大型网络中的传播和影响至关重要。最近研究社交媒体数据以按主题相关性对用户进行排名的研究主要集中在“转发”,“关注”和“提及”关系上。本文基于Twitter图的转推子图,提出了使用语义配置文件来推导有影响力的用户的方法。基于转推的主题/实体相关性,我们介绍了PageRank算法的一种变体,用于分析用户的主题和实体影响关系。实验结果表明,我们的方法优于HITS,InDegree和主题敏感PageRank等相关算法。我们还介绍了VisInfluence,这是一个可视化平台,可根据主题查询需求来展示有影响力的顶级用户。

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