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Mayo Clin Proc ; 98(3): 445-450, 2023 03.
Artigo em Inglês | MEDLINE | ID: mdl-36868752

RESUMO

We recently brought an internally developed machine-learning model for predicting which patients in the emergency department would require hospital admission into the live electronic health record environment. Doing so involved navigating several engineering challenges that required the expertise of multiple parties across our institution. Our team of physician data scientists developed, validated, and implemented the model. We recognize a broad interest and need to adopt machine-learning models into clinical practice and seek to share our experience to enable other clinician-led initiatives. This Brief Report covers the entire model deployment process, starting once a team has trained and validated a model they wish to deploy in live clinical operations.


Assuntos
Registros Eletrônicos de Saúde , Corrida , Humanos , Serviço Hospitalar de Emergência , Instalações de Saúde , Aprendizado de Máquina
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