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Biolinkbert Base

Developed by michiyasunaga
BioLinkBERT is an improved BERT model pre-trained on PubMed abstracts and literature citation links, excelling in biomedical NLP tasks
Downloads 33.34k
Release Time : 3/8/2022

Model Overview

Enhances language representation by integrating cross-document linking information, demonstrating superior performance in biomedical text understanding and Q&A systems

Model Features

Cross-document link pre-training
Learns cross-document semantic relationships using literature citation links
Biomedical domain optimization
Trained on PubMed data, specifically designed for healthcare domain tasks
Knowledge-enhanced representation
Captures richer domain knowledge through linked contexts

Model Capabilities

Biomedical text understanding
Medical Q&A systems
Literature classification
Medical terminology recognition
Medical entity linking

Use Cases

Clinical research support
Drug mechanism analysis
Extracts drug mechanism relationships from literature
Achieved 91.4% accuracy in BioASQ tasks
Medical education
USMLE exam Q&A
Answers questions related to the United States Medical Licensing Examination
40.0% accuracy on MedQA test (outperforming PubmedBERT)
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