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Fine-tuning large language models for rare disease concept normalization.

Andy WangCong LiuJingye YangChunhua Weng
Published in: Journal of the American Medical Informatics Association : JAMIA (2024)
Our fine-tuned models demonstrate ability to normalize phenotype terms unseen in the fine-tuning corpus, including misspellings, synonyms, terms from other ontologies, and laymen's terms. Our approach provides a solution for the use of LLMs to identify named medical entities from clinical narratives, while successfully normalizing them to standard concepts in a controlled vocabulary.
Keyphrases
  • air pollution
  • healthcare
  • autism spectrum disorder