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Scmhl5 at TRAC-2 Shared Task on Aggression Identification: Bert Based Ensemble Learning Approach

Proceedings of the Second Workshop on Trolling, Aggression and Cyberbullying

DOI:10.63317/25jobptfdiff

Abstract

This paper presents a system developed during our participation (team name: scmhl5) in the TRAC-2 Shared Task on aggression identification. In particular, we participated in English Sub-task A on three-class classification (‘Overtly Aggressive’, ‘Covertly Aggressive’ and ‘Non-aggressive’) and English Sub-task B on binary classification for Misogynistic Aggression (‘gendered’ or ‘non-gendered’). For both sub-tasks, our method involves using the pre-trained Bert model for extracting the text of each instance into a 768-dimensional vector of embeddings, and then training an ensemble of classifiers on the embedding features. Our method obtained accuracy of 0.703 and weighted F-measure of 0.664 for Sub-task A, whereas for Sub-task B the accuracy was 0.869 and weighted F-measure was 0.851. In terms of the rankings, the weighted F-measure obtained using our method for Sub-task A is ranked in the 10th out of 16 teams, whereas for Sub-task B the weighted F-measure is ranked in the 8th out of 15 teams.

Details

Paper ID
lrec2020-ws-trac-10
Pages
pp. 62-68
BibKey
liu-etal-2020-scmhl5
Editor
N/A
Publisher
European Language Resources Association (ELRA)
ISSN
N/A
ISBN
N/A
Workshop
Proceedings of the Second Workshop on Trolling, Aggression and Cyberbullying
Location
undefined, undefined
Date
11 May 2020 16 May 2020

Authors

  • HL

    Han Liu

  • PB

    Pete Burnap

  • WA

    Wafa Alorainy

  • MW

    Matthew Williams

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