Detecting Online Hate Speech Using Context Aware Models

October 20, 2017 ยท Declared Dead ยท ๐Ÿ› Recent Advances in Natural Language Processing

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Authors Lei Gao, Ruihong Huang arXiv ID 1710.07395 Category cs.CL: Computation & Language Citations 270 Venue Recent Advances in Natural Language Processing Last Checked 3 months ago
Abstract
In the wake of a polarizing election, the cyber world is laden with hate speech. Context accompanying a hate speech text is useful for identifying hate speech, which however has been largely overlooked in existing datasets and hate speech detection models. In this paper, we provide an annotated corpus of hate speech with context information well kept. Then we propose two types of hate speech detection models that incorporate context information, a logistic regression model with context features and a neural network model with learning components for context. Our evaluation shows that both models outperform a strong baseline by around 3% to 4% in F1 score and combining these two models further improve the performance by another 7% in F1 score.
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