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      Overview of the HASOC Subtrack at FIRE 2023: Identification of Tokens Contributing to Explicit Hate in English by Span Detection

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          Abstract

          As hate speech continues to proliferate on the web, it is becoming increasingly important to develop computational methods to mitigate it. Reactively, using black-box models to identify hateful content can perplex users as to why their posts were automatically flagged as hateful. On the other hand, proactive mitigation can be achieved by suggesting rephrasing before a post is made public. However, both mitigation techniques require information about which part of a post contains the hateful aspect, i.e., what spans within a text are responsible for conveying hate. Better detection of such spans can significantly reduce explicitly hateful content on the web. To further contribute to this research area, we organized HateNorm at HASOC-FIRE 2023, focusing on explicit span detection in English Tweets. A total of 12 teams participated in the competition, with the highest macro-F1 observed at 0.58.

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          Author and article information

          Journal
          16 November 2023
          Article
          2311.09834
          ee7d7044-32f5-4447-babc-ab9d5d0283eb

          http://creativecommons.org/licenses/by/4.0/

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          Custom metadata
          8 pages, 1 figure, 4 Tables
          cs.CL

          Theoretical computer science
          Theoretical computer science

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