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Derivation and external validation of risk stratification models for severe maternal morbidity using prenatal
Mark A Clapp1, Thomas H McCoy2,3, Kaitlyn E James4
1Department of Obstetrics and Gynecology, Massachusetts General Hospital, Boston, MA, USA. mark.clapp@mgh.harvard.edu.
Objective:
We sought to develop a prediction model using prenatal diagnosis codes that could help clinicians objectively stratify a women's risk for delivery-related morbidity.
Study Design:
We performed a prospective cohort study of women delivering at a single academic medical center between 2016 and 2019. Diagnosis codes from outpatient encounters were extracted from the electronic health record. Standard and common machine-learning methods for variable selection were compared. The performance characteristics from the selected model in the training data set-a LASSO model with a lambda that minimized the Bayes information criteria-were compared in a testing and external validation set.
Results:
The model identified a group of women, those in the highest decile of predicted risk, who were at a two to threefold increased risk of maternal morbidity.
Conclusion:
As EHR data becomes more ubiquitous, other data types generated from the prenatal period may improve the model's performance.
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