Predicting fetal alcohol spectrum disorders in preschool-aged children from early life factors

Gretchen Bandoli1, Claire Coles2, Julie Kable2

  • 1Department of Pediatrics, University of California San Diego, San Diego, California, USA.

Insights

Classifier models using early life factors show promise for predicting fetal alcohol spectrum disorders (FASD). The best model achieved 86% accuracy, correctly identifying most children with and without FASD.

Area of Science:

  • Pediatrics
  • Public Health
  • Machine Learning in Healthcare

Background:

  • Fetal alcohol spectrum disorders (FASD) are linked to early life factors.
  • These include parental demographics, prenatal exposures, and infant development.

Purpose of the Study:

  • To assess classifier models for diagnosing FASD in preschoolers.
  • Models utilized pregnancy and infancy characteristics.

Main Methods:

  • Prospective pregnancy cohort in Western Ukraine (2008-2014).
  • Included sociodemographic, prenatal, birth, and infant data.
  • Evaluated random forest, XGBoost, and logistic regression models.

Main Results:

  • Random forest models achieved the highest sensitivity (0.54) and accuracy (0.86).
  • The best model correctly classified 6/11 children with FASD and 44/47 without.
  • Other models showed lower sensitivity or accuracy.

Conclusions:

  • Classifier models using early life data show potential for FASD prediction.
  • Early identification and treatment are crucial for optimal outcomes.
  • Future models could incorporate physiologic markers and be tested on diverse samples.
Abstract

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