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Int J Med Inform ; 84(12): 1039-47, 2015 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-26254876

RESUMO

BACKGROUND: In order to proactively manage congestive heart failure (CHF) patients, an effective CHF case finding algorithm is required to process both structured and unstructured electronic medical records (EMR) to allow complementary and cost-efficient identification of CHF patients. METHODS AND RESULTS: We set to identify CHF cases from both EMR codified and natural language processing (NLP) found cases. Using narrative clinical notes from all Maine Health Information Exchange (HIE) patients, the NLP case finding algorithm was retrospectively (July 1, 2012-June 30, 2013) developed with a random subset of HIE associated facilities, and blind-tested with the remaining facilities. The NLP based method was integrated into a live HIE population exploration system and validated prospectively (July 1, 2013-June 30, 2014). Total of 18,295 codified CHF patients were included in Maine HIE. Among the 253,803 subjects without CHF codings, our case finding algorithm prospectively identified 2411 uncodified CHF cases. The positive predictive value (PPV) is 0.914, and 70.1% of these 2411 cases were found to be with CHF histories in the clinical notes. CONCLUSIONS: A CHF case finding algorithm was developed, tested and prospectively validated. The successful integration of the CHF case findings algorithm into the Maine HIE live system is expected to improve the Maine CHF care.


Assuntos
Algoritmos , Mineração de Dados/métodos , Registros Eletrônicos de Saúde/estatística & dados numéricos , Insuficiência Cardíaca/epidemiologia , Processamento de Linguagem Natural , Reconhecimento Automatizado de Padrão/métodos , Sistemas de Apoio a Decisões Clínicas/organização & administração , Humanos , Maine/epidemiologia , Prevalência , Estudos Prospectivos , Reprodutibilidade dos Testes , Sensibilidade e Especificidade , Vocabulário Controlado
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