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SemEval-2013 Task 2: Sentiment Analysis in Twitter

机译:Semeval-2013任务2:Twitter中的情感分析

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In recent years, sentiment analysis in social media has attracted a lot of research interest and has been used for a number of applications. Unfortunately, research has been hindered by the lack of suitable datasets, complicating the comparison between approaches. To address this issue, we have proposed SemEval-2013 Task 2: Sentiment Analysis in Twitter, which included two subtasks: A, an expression-level subtask, and B, a message-level subtask. We used crowdsourcing on Amazon Mechanical Turk to label a large Twitter training dataset along with additional test sets of Twitter and SMS messages for both subtasks. All datasets used in the evaluation are released to the research community. The task attracted significant interest and a total of 149 submissions from 44 teams. The best-performing team achieved an F1 of 88.9% and 69% for subtasks A and B, respectively.
机译:近年来,社交媒体的情感分析吸引了很多研究兴趣,并已用于许多申请。不幸的是,通过缺乏合适的数据集来阻碍研究,使方法与方法之间的比较复杂化。要解决此问题,我们已经提出了Semeval-2013任务2:Twitter中的情感分析,其中包括两个子任务:A,表达式级别子任务和B,邮件级别子任务。我们在亚马逊机械土耳治上使用了众包,以标记大型Twitter训练数据集以及两个子任务的推特和短信的其他测试集。评估中使用的所有数据集将发布给研究界。该任务吸引了重大兴趣,共有44项团队提交149份。最佳性能的团队分别为子任务A和B分别实现了88.9%和69%的F1。

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