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JCTDHS at SemEval-2019 Task 5: Detection of Hate Speech in Tweets using Deep Learning Methods, Character N-gram Features, and Preprocessing Methods

机译:JCTDH在Semeval-2019任务5:使用深度学习方法,字符n-gram功能和预处理方法检测推文中的仇恨语音

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摘要

In this paper, we describe our submissions to SemEval-2019 contest. We tackled subtask A - "a binary classification where systems have to predict whether a tweet with a given target (women or immigrants) is hateful or not hateful", a part of task 5 "Multilingual detection of hate speech against immigrants and women in Twitter (HatEval)". Our system JCTDHS (Jerusalem College of Technology Detects Hate Speech) was developed for tweets written in English. We applied various supervised ML methods, various combinations of n-gram features using the TF-IDF scheme. In addition, we applied various combinations of eight basic preprocessing methods. Our best submission was a special bidirectional RNN, which was ranked at the 11th position out of 68 submissions.
机译:在本文中,我们将我们的意见书描述为Semeval-2019比赛。我们解决了subtask a - “一个二进制分类,系统必须预测与给定目标(女性或移民)的推文是可恶或不讨厌的”,任务5的一部分“对讨论者和妇女的仇恨言论的多语言检测(Hateval)“。我们的系统JCTDH(耶路撒冷理工学院检测仇恨演讲)是用英语编写的推文开发的。我们应用了各种监督ML方法,使用TF-IDF方案各种组合N-GRAM功能。此外,我们应用了八种基本预处理方法的各种组合。我们的最佳提交是一个特殊的双向RNN,其在​​68名提交中排名第11位。

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