Chronic obstructive pulmonary disease exacerbation episodes derived from electronic health record data validated using clinical trial data.
Aged
Algorithms
Clinical Trials, Phase III as Topic
/ statistics & numerical data
Data Collection
/ methods
Databases, Factual
/ statistics & numerical data
Electronic Health Records
/ statistics & numerical data
England
/ epidemiology
Female
Humans
Male
Middle Aged
Patient Admission
/ statistics & numerical data
Pharmacoepidemiology
/ methods
Pulmonary Disease, Chronic Obstructive
/ diagnosis
Randomized Controlled Trials as Topic
/ statistics & numerical data
Sensitivity and Specificity
Severity of Illness Index
Symptom Flare Up
algorithms
chronic obstructive
electronic health records
pharmacoepidemiology
pulmonary disease
validation
Journal
Pharmacoepidemiology and drug safety
ISSN: 1099-1557
Titre abrégé: Pharmacoepidemiol Drug Saf
Pays: England
ID NLM: 9208369
Informations de publication
Date de publication:
10 2019
10 2019
Historique:
received:
29
01
2019
revised:
15
07
2019
accepted:
18
07
2019
pubmed:
7
8
2019
medline:
1
7
2020
entrez:
7
8
2019
Statut:
ppublish
Résumé
To validate an algorithm for acute exacerbations of chronic obstructive pulmonary disease (AECOPD) episodes derived in an electronic health record (EHR) database, against AECOPD episodes collected in a randomized clinical trial using an electronic case report form (eCRF). We analyzed two data sources from the Salford Lung Study in COPD: trial eCRF and the Salford Integrated Record, a linked primary-secondary routine care EHR database of all patients in Salford. For trial participants, AECOPD episodes reported in eCRF were compared with algorithmically derived moderate/severe AECOPD episodes identified in EHR. Episode characteristics (frequency, duration), sensitivity, and positive predictive value (PPV) were calculated. A match between eCRF and EHR episodes was defined as at least 1-day overlap. In the primary effectiveness analysis population (n = 2269), 3791 EHR episodes (mean [SD] length: 15.1 [3.59] days; range: 14-54) and 4403 moderate/severe AECOPD eCRF episodes (mean length: 13.8 [16.20] days; range: 1-372) were identified. eCRF episodes exceeding 28 days were usually broken up into shorter episodes in the EHR. Sensitivity was 63.6% and PPV 71.1%, where concordance was defined as at least 1-day overlap. The EHR algorithm performance was acceptable, indicating that EHR-derived AECOPD episodes may provide an efficient, valid method of data collection. Comparing EHR-derived AECOPD episodes with those collected by eCRF resulted in slightly fewer episodes, and eCRF episodes of extreme lengths were poorly captured in EHR. Analysis of routinely collected EHR data may be reasonable when relative, rather than absolute, rates of AECOPD are relevant for stakeholders' decision making.
Identifiants
pubmed: 31385428
doi: 10.1002/pds.4883
pmc: PMC7028141
doi:
Banques de données
ClinicalTrials.gov
['NCT01551758']
Types de publication
Journal Article
Research Support, Non-U.S. Gov't
Validation Study
Langues
eng
Sous-ensembles de citation
IM
Pagination
1369-1376Informations de copyright
© 2019 John Wiley & Sons, Ltd.
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