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Paper Information

lrec2024-ws-delite-7

Leveraging High-Precision Corpus Queries for Text Classification via Large Language Models

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Title

Leveraging High-Precision Corpus Queries for Text Classification via Large Language Models

Abstract

We use query results from manually designed corpus queries for fine-tuning an LLM to identify argumentative fragments as a text mining task. The resulting model outperforms both an LLM fine-tuned on a relatively large manually annotated gold standard of tweets as well as a rule-based approach. This proof-of-concept study demonstrates the usefulness of corpus queries to generate training data for complex text categorisation tasks, especially if the targeted category has low prevalence (so that a manually annotated gold standard contains only a small number of positive examples).


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