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Knowledge-Based Sentiment Analysis and Visualization on Social Networks

机译:基于知识的情感分析和社交网络的可视化

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摘要

A knowledge-based methodology is proposed for sentiment analysis on social networks. The work was focused on semantic processing taking into account the content handling the public user's opinions as excerpts of knowledge. Our approach implements knowledge graphs, similarity measures, graph theory algorithms, and a disambiguation process. The results obtained were compared with data retrieved from Twitter and users' reviews in Amazon. We measured the efficiency of our contribution with precision, recall, and the F-measure, comparing it with the traditional method of looking up concepts in dictionaries which usually assign averages. Moreover, an analysis was carried out to find the best performance for the classification by using polarity, sentiment, and a polarity-sentiment hybrid. A study is presented for arguing the advantage of using a disambiguation process in knowledge processing. A visualization system presents the social graphs to display the sentiment information of each comment as well as the social structure and communications in the network.
机译:提出了一种基于知识的方法,为社交网络的情绪分析。这项工作侧重于考虑到公共用户意见的内容作为知识摘录的内容。我们的方法实现了知识图形,相似度措施,图形理论算法和消歧过程。获得的结果与从亚马逊的Twitter和用户评论中检索的数据进行比较。我们通过精确,召回和F测量来衡量我们的贡献的效率,将其与传统的查找通常分配平均值的概念的方法进行比较。此外,通过使用极性,情绪和极性情感混合来找到分析以找到分类的最佳性能。提出了一种研究,用于争论在知识处理中使用消歧过程的优势。可视化系统呈现社交图表,以显示每个评论的情绪信息以及网络中的社交结构和通信。

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