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Development and Validation of HealthImpact: An Incident Diabetes Prediction Model Based on Administrative Data
Rozalina G McCoy1,2, Vijay S Nori3, Steven A Smith4,5
1Division of Primary Care Internal Medicine, Department of Medicine, Mayo Clinic, Rochester, MN. mccoy.rozalina@mayo.edu.
Objective:
To develop and validate a model of incident type 2 diabetes based solely on administrative data.
Data Sources/Study Setting:
Optum Labs Data Warehouse (OLDW), a national commercial administrative dataset.
Study Design:
HealthImpact model was developed and internally validated using nested case-control study design; n = 473,049 in training cohort and n = 303,025 in internal validation cohort. HealthImpact was externally validated in 2,000,000 adults followed prospectively for 3 years. Only adults ≥18 years were included.
Data Collection/Extraction Methods:
Patients with incident diabetes were identified using HEDIS rules. Control subjects were sampled from patients without diabetes. Medical and pharmacy claims data collected over 3 years prior to index date were used to build the model variables.
Principal Findings:
HealthImpact, scored 0-100, has 48 variables with c-statistic 0.80815. We identified HealthImpact threshold of 90 as identifying patients at high risk of incident diabetes. HealthImpact had excellent discrimination in external validation cohort (c-statistic 0.8171). The sensitivity, specificity, positive predictive value, and negative predictive value of HealthImpact >90 for new diagnosis of diabetes within 3 years were 32.35, 94.92, 22.25, and 96.90 percent, respectively.
Conclusions:
HealthImpact is an efficient and effective method of risk stratification for incident diabetes that is not predicated on patient-provided information or laboratory tests.
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