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Identification of Opinion Leaders in Social Networks Based on Sentiment Analysis: Evidence from an Automotive Forum

机译:基于情感分析的社会网络识别领导者:汽车论坛的证据

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Opinion leadership of social network plays an important role in the fields of knowledge spreading, public sentiment controlling, marketing, etc. The opinions of users are derived from the reviews of topics, and the analysis of users' sentiment is helpful in recognizing users' emotional preference of opinion leaders. Thus, it is necessary to classify the forum posts and refine the posts with highly professional knowledge. We then improve the sentiment analysis due to the imbalanced datasets, and establish a comprehensive attention and emotion weight matrix. Accordingly, in this paper, we are going to propose a Leader-PageRank algorithm, which is based on the social network structure and emotional tendency. We do the comparative experiments on the automotive forum, and the results show that the Leader-PageRank algorithm can identify the positive opinion leaders in the professional fields effectively through connecting with the interactions in social networks.
机译:社会网络的意见领导在知识传播,公众情绪控制,营销等领域起着重要作用。用户的意见来自主题的评论,对用户情绪的分析有助于认识到用户的情感 意见领导者的偏好。 因此,有必要将论坛员额分类并优化具有高度专业知识的帖子。 然后,我们通过不平衡的数据集提高了情感分析,并建立了全面的关注和情感重量矩阵。 因此,在本文中,我们将提出一种领导者 - PageRank算法,该算法基于社会网络结构和情感倾向。 我们对汽车论坛进行比较实验,结果表明,通过与社交网络的交互连接,领导者-PageRank算法可以有效地识别专业领域的积极意见领导者。

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