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◆ Proceedings. IEEE International Conference on Healthcare Informatics2026-01-01

Curation and Extraction of Drug-Related Entities from Reddit Platform.

Zewei Wang, Zihan Xu, Yishu Wei, Michael Chary, Yifan Peng

原始摘要(英文原文)· Original abstract
Physicians learn primarily about illicit drugs from clinical overdose cases, limiting their understanding of real-world usage. Meanwhile, drug users share first-hand experiences online, offering insights into dosage and effects of drugs. To bridge this gap, we introduce ReDose (REddit Drug DOSe and Effect), a dataset of 6,435 Reddit posts on substance use. A board-certified toxicologist primarily annotated both the training and test sets, while two medical science students contributed to the test set, labeling DRUG, DOSE, and EFFECT entities. We benchmarked 6,267 annotations using BERT-based, large language model (LLM)-based, and Retrieval-Augmented Generation (RAG) models. BiomedBERT achieved an F1-score of 0.843 for DRUG, while Llama-3 70B outperformed GPT-4 (F1 = 0.79 vs. 0.72). EFFECT extraction remains challenging, with GPT-4 achieving a recall of 0.41. ReDose captures patient-curated narratives to advance medical data extraction from social media.
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Curation and Extraction of Drug-Related Entities from Reddit Platform. — 科研速览 Science Skim