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Twitter Hate Aspect Extraction Using Association Analysis and Dictionary-Based Approach

机译:推特讨论方面采用关联分析和基于词典的方法提取

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Recent research regarding hate speech is in the domain of social sciences and psychology. From these trends, the dissemination of hate speech and antagonistic content in social media has not been extensively studies from the perspective of sentiment analysis. In this paper, the main studies concerned about aspect-based sentiment analysis through twitter as the most popular social media communication in the world as they have 313 million active users worldwide. This paper initiate to address the shortcomings of implied aspects specific for hate crime domain. The expected beneficial hate aspects can be extracted from twitter based on combination of both analysis. The evaluation with researcher's own Hate Crime Twitter Sentiment (HCTS) dataset and also Hate Speech Twitter Datasoft (HSTD) was shown that the proposed approach is effective and produces significantly better results than baselines method.
机译:关于仇恨言论的最近研究是在社会科学和心理学领域。从这些趋势来看,社会媒体中仇恨言论和拮抗内容的传播尚未从情感分析的角度进行广泛研究。在本文中,主要研究通过Twitter作为世界上最受欢迎的社交媒体沟通,因为他们拥有全球31300万活跃用户。本文启动了对仇恨犯罪领域特定的隐含方面的缺点。基于两种分析的组合,可以从Twitter中提取预期的有益仇恨方面。与研究人员自己的仇恨犯罪的评估提出情绪(HCTS)数据集和讨论演讲Twitter DataSoft(HSTD)表明,所提出的方法是有效的,产生比基准方法的显着更好的结果。

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