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Clin Imaging ; 110: 110164, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38691911

RESUMO

Natural Language Processing (NLP), a form of Artificial Intelligence, allows free-text based clinical documentation to be integrated in ways that facilitate data analysis, data interpretation and formation of individualized medical and obstetrical care. In this cross-sectional study, we identified all births during the study period carrying the radiology-confirmed diagnosis of fibroid uterus in pregnancy (defined as size of largest diameter of >5 cm) by using an NLP platform and compared it to non-NLP derived data using ICD10 codes of the same diagnosis. We then compared the two sets of data and stratified documentation gaps by race. Using fibroid uterus in pregnancy as a marker, we found that Black patients were more likely to have the diagnosis entered late into the patient's chart or had missing documentation of the diagnosis. With appropriate algorithm definitions, cross referencing and thorough validation steps, NLP can contribute to identifying areas of documentation gaps and improve quality of care.


Assuntos
Documentação , Processamento de Linguagem Natural , Neoplasias Uterinas , Humanos , Feminino , Gravidez , Estudos Transversais , Documentação/normas , Documentação/estatística & dados numéricos , Neoplasias Uterinas/diagnóstico por imagem , Racismo , Leiomioma/diagnóstico por imagem , Adulto , Obstetrícia , Complicações Neoplásicas na Gravidez/diagnóstico por imagem
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