Intervention extraction in preclinical animal studies of Alzheimer’s Disease: Enhancing regex performance with language model-based filtering

Yiyuan Pu, Kaitlyn Hair, Daniel Beck, Mike Conway, Malcolm Macleod, Karin Verspoor

Research output: Chapter in Book/Report/Conference proceedingConference contribution

Abstract / Description of output

We explore different information extraction tools for annotation of interventions to support automated systematic reviews of preclinical AD animal studies. We compare two PICO (Population, Intervention, Comparison, and Outcome) extraction tools and two prompting-based learning strategies based on Large Language Models (LLMs). Motivated by the high recall of a dictionary-based approach, we define a two-stage method, removing false positives obtained from regexes with a pre-trained LM. With ChatGPT-based filtering using three-shot prompting, our approach reduces almost two-thirds of False Positives compared to the dictionary approach alone, while outperforming knowledge-free instructional prompting..

Original languageEnglish
Title of host publicationBioNLP 2024 - 23rd Meeting of the ACL Special Interest Group on Biomedical Natural Language Processing, Proceedings of the Workshop and Shared Tasks
EditorsDina Demner-Fushman, Sophia Ananiadou, Makoto Miwa, Kirk Roberts, Junichi Tsujii
PublisherAssociation for Computational Linguistics (ACL)
Pages486-492
Number of pages7
ISBN (Electronic)9798891761308
Publication statusPublished - 2024
Event23rd Meeting of the ACL Special Interest Group on Biomedical Natural Language Processing, BioNLP 2024 - Bangkok, Thailand
Duration: 16 Aug 2024 → …

Publication series

NameBioNLP 2024 - 23rd Meeting of the ACL Special Interest Group on Biomedical Natural Language Processing, Proceedings of the Workshop and Shared Tasks

Conference

Conference23rd Meeting of the ACL Special Interest Group on Biomedical Natural Language Processing, BioNLP 2024
Country/TerritoryThailand
CityBangkok
Period16/08/24 → …

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