CoRAL: a Context-aware Croatian Abusive Language Dataset

November 11, 2022 ยท Declared Dead ยท ๐Ÿ› AACL/IJCNLP

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Authors Ravi Shekhar, Mladen Karan, Matthew Purver arXiv ID 2211.06053 Category cs.CL: Computation & Language Citations 7 Venue AACL/IJCNLP Last Checked 5 months ago
Abstract
In light of unprecedented increases in the popularity of the internet and social media, comment moderation has never been a more relevant task. Semi-automated comment moderation systems greatly aid human moderators by either automatically classifying the examples or allowing the moderators to prioritize which comments to consider first. However, the concept of inappropriate content is often subjective, and such content can be conveyed in many subtle and indirect ways. In this work, we propose CoRAL -- a language and culturally aware Croatian Abusive dataset covering phenomena of implicitness and reliance on local and global context. We show experimentally that current models degrade when comments are not explicit and further degrade when language skill and context knowledge are required to interpret the comment.
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