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Leveraging Large Language Models for Automated Definition Extraction with TaxoMatic A Case Study on Media Bias

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This paper introduces TaxoMatic, a framework that leverages large language models to automate definition extraction from academic literature. Focusing on the media bias domain, the framework encompasses data collection, LLM-based relevance classification, and extraction of conceptual definitions. Evaluated on a dataset of 2,398 manually rated articles, the study demonstrates the frameworks effectiveness, with Claude-3-sonnet achieving the best results in both relevance classification and definition extraction. Future directions include expanding datasets and applying TaxoMatic to additional domains.

Timo Spinde, Luyang Lin, Smi Hinterreiter, Isao Echizen• 2025

Related benchmarks

TaskDatasetResultRank
Definition ExtractionDefExtra (test)
Avg NLI0.159
5
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