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Structured information extraction from scientific text with large language models

Abstract Extracting structured knowledge from scientific text remains a challenging task for machine learning models. Here, we present a simple approach to joint named entity recognition and relation extraction and demonstrate how pretrained large language models (GPT-3, Llama-2) can be fine-tuned t...

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Autori principali: John Dagdelen, Alexander Dunn, Sanghoon Lee, Nicholas Walker, Andrew S. Rosen, Gerbrand Ceder, Kristin A. Persson, Anubhav Jain
Natura: Artigo
Lingua:Inglês
Pubblicazione: Nature Portfolio 2024-02-01
Serie:Nature Communications
Accesso online:https://doi.org/10.1038/s41467-024-45563-x
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