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UBC-DLNLP at SemEval-2023 Task 12: Impact of Transfer Learning on African Sentiment Analysis (2304.11256v2)

Published 21 Apr 2023 in cs.CL

Abstract: We describe our contribution to the SemEVAl 2023 AfriSenti-SemEval shared task, where we tackle the task of sentiment analysis in 14 different African languages. We develop both monolingual and multilingual models under a full supervised setting (subtasks A and B). We also develop models for the zero-shot setting (subtask C). Our approach involves experimenting with transfer learning using six LLMs, including further pertaining of some of these models as well as a final finetuning stage. Our best performing models achieve an F1-score of 70.36 on development data and an F1-score of 66.13 on test data. Unsurprisingly, our results demonstrate the effectiveness of transfer learning and fine-tuning techniques for sentiment analysis across multiple languages. Our approach can be applied to other sentiment analysis tasks in different languages and domains.

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Authors (4)
  1. Gagan Bhatia (12 papers)
  2. Ife Adebara (12 papers)
  3. AbdelRahim Elmadany (33 papers)
  4. Muhammad Abdul-Mageed (102 papers)
Citations (1)