Predicting emergency department visits among children with asthma in two academic medical systems

Tyler J Gorham1, Dmitry Tumin2, Judith Groner3,4

  • 1Information Technology Research & Innovation, Nationwide Children's Hospital, Columbus, OH, USA.

Insights

A new Asthma Emergency Risk (AER) score effectively predicts pediatric asthma emergencies. Local retraining of the AER score improved its accuracy in external validation, highlighting the need for site-specific adjustments.

Area of Science:

  • Pediatric emergency medicine
  • Health informatics
  • Biostatistics

Background:

  • Asthma is a common chronic respiratory disease in children.
  • Predicting asthma-related emergencies is crucial for timely intervention and resource allocation.
  • Existing risk prediction models may require adaptation for different healthcare settings.

Purpose of the Study:

  • To develop and validate a predictive algorithm, the Asthma Emergency Risk (AER) score, for pediatric asthma emergencies.
  • To assess the AER score's performance in an external clinical site.
  • To evaluate the impact of local retraining on the algorithm's external validity.

Main Methods:

  • A lasso-regularized logistic regression model was developed using retrospective data from 26,008 pediatric asthma patients (ages 2-18).
  • Internal validation was performed on 8,634 patient encounters, and external validation on 1,313 encounters from a second site.
  • The AER score's components were reweighted via logistic regression using external site data to enhance local performance.

Main Results:

  • The AER score demonstrated strong internal validity with an AUROC of 0.769.
  • Initial external validation at the second site yielded an AUROC of 0.684.
  • Local retraining significantly improved the cross-validated AUROC to 0.737 (p=0.037), indicating enhanced external validity.

Conclusions:

  • The AER score shows robust internal predictive power for pediatric asthma emergencies.
  • External validity of the AER score is significantly influenced by local data characteristics.
  • Local retraining of predictive models is essential to optimize performance in diverse clinical settings.

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