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Identifying health outcomes in healthcare databases

Authors :
Stephan, Lanes
Jeffrey S, Brown
Kevin, Haynes
Michael F, Pollack
Alexander M, Walker
Source :
Pharmacoepidemiology and drug safety. 24(10)
Publication Year :
2015

Abstract

The purpose of this review is to assist researchers in developing, using, and interpreting case-identifying algorithms in electronic healthcare databases.We review clinical characteristics of health outcomes, data settings and informatics, and epidemiologic and statistical methods aspects as they pertain to the development and use of case-identifying algorithms.We offer a framework for thinking critically about the use of electronic health insurance data and electronic health records to identify the occurrence of health outcomes. Accuracy of case ascertainment in database research depends on many factors, including clinical and behavioral aspects of the health outcome, and details of database construction as it pertains to completeness and reliability of database content. Existing methods for diagnostic and screening tests, misclassification, validation studies, and predictive modelling can be usefully applied to improve case ascertainment in database research.Good case-identifying algorithms are based on a sound understanding of care-seeking behavior and patterns of clinical diagnosis and treatment in the study population and details about the construction and characteristics of the database. Researchers should use quantitative bias analyses to take into account the performance characteristics of case-identifying algorithms and their impact on study results.

Details

ISSN :
10991557
Volume :
24
Issue :
10
Database :
OpenAIRE
Journal :
Pharmacoepidemiology and drug safety
Accession number :
edsair.pmid..........d805b87b2af054c5a43f316a3b356935