Comparison of Machine Learning Optimal Classification Trees With the Pediatric Emergency Care Applied Research

Dimitris Bertsimas1, Jack Dunn1, Dale W Steele2,3

  • 1Operations Research Center, Massachusetts Institute of Technology, Cambridge.

JAMA Pediatrics
|May 14, 2019
PubMed

Insights

Optimal classification trees (OCTs) show promise in improving the accuracy of identifying children with traumatic brain injury (TBI) compared to existing Pediatric Emergency Care Applied Research Network (PECARN) rules. These machine-learning models may reduce unnecessary CT scans without missing critical injuries.

Area of Science:

  • Pediatric Emergency Medicine
  • Medical Imaging Analysis
  • Machine Learning in Healthcare

Background:

  • Computed tomographic (CT) scanning is standard for diagnosing intracranial injury but is costly and involves radiation.
  • Pediatric Emergency Care Applied Research Network (PECARN) rules are used to triage CT imaging for minor head trauma in children.
  • There is a need for improved accuracy in identifying children at very low risk of clinically important traumatic brain injury (ciTBI).

Purpose of the Study:

  • To evaluate if novel machine-learning classifiers, optimal classification trees (OCTs), enhance the predictive accuracy of identifying ciTBI in children.
  • To compare the performance of OCT-based prediction rules against the established PECARN rules.

Main Methods:

  • A secondary analysis of prospective data from 42,412 children with head trauma was conducted.
  • OCT-based prediction rules were derived and compared to PECARN rules in validation cohorts for children younger than 2 and 2 years or older.
  • Predictive performance was measured using sensitivity, specificity, positive predictive value, and likelihood ratios.

Main Results:

  • OCTs demonstrated statistically significant improvements in specificity and positive predictive value compared to PECARN rules in both age cohorts.
  • OCTs correctly identified more children with a very low risk of ciTBI.
  • No significant differences were found in sensitivity or negative predictive value between OCTs and PECARN rules.

Conclusions:

  • Optimal classification trees (OCTs) show potential to enhance the accuracy of identifying children with traumatic brain injury.
  • Implementation of OCTs could lead to a reduction in unnecessary CT scans.
  • OCTs offer a promising alternative or adjunct to PECARN rules for managing pediatric head trauma.
Abstract

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