hateBERT

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1 language
license:apache-2.0
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GroNLP
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Quick Summary

Tommaso Caselli • Valerio Basile • Jelena Mitrovic • Michael Granizter HateBERT is an English pre-trained BERT model obtained by further training the English B...

Code Examples

BibTeX entry and citation infobibtex
@inproceedings{caselli-etal-2021-hatebert,
    \ttitle = "{H}ate{BERT}: Retraining {BERT} for Abusive Language Detection in {E}nglish",
    \tauthor = "Caselli, Tommaso  and
      Basile, Valerio  and
      Mitrovi{\'c}, Jelena  and
      Granitzer, Michael",
    \tbooktitle = "Proceedings of the 5th Workshop on Online Abuse and Harms (WOAH 2021)",
    \tmonth = aug,
    \tyear = "2021",
    \taddress = "Online",
    \tpublisher = "Association for Computational Linguistics",
    \tturl = "https://aclanthology.org/2021.woah-1.3",
    \tdoi = "10.18653/v1/2021.woah-1.3",
    \tpages = "17--25",
    \tabstract = "We introduce HateBERT, a re-trained BERT model for abusive language detection in English. The model was trained on RAL-E, a large-scale dataset of Reddit comments in English from communities banned for being offensive, abusive, or hateful that we have curated and made available to the public. We present the results of a detailed comparison between a general pre-trained language model and the retrained version on three English datasets for offensive, abusive language and hate speech detection tasks. In all datasets, HateBERT outperforms the corresponding general BERT model. We also discuss a battery of experiments comparing the portability of the fine-tuned models across the datasets, suggesting that portability is affected by compatibility of the annotated phenomena.",
}

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