Analysis of risk factors progression of preterm delivery using electronic health records

Zeineb Safi1, Neethu Venugopal1, Haytham Ali2

  • 1Research Department, Sidra Medicine, Doha, Qatar.

Biodata Mining
|August 17, 2022
PubMed

Insights

Identifying preterm delivery risk factors is crucial for maternal and infant health. A study of 60,000 electronic health records revealed that a history of previous preterm birth is the strongest predictor, with other factors changing throughout pregnancy.

Area of Science:

  • Obstetrics and Gynecology
  • Public Health
  • Data Science in Healthcare

Background:

  • Preterm deliveries pose significant risks to maternal and infant well-being.
  • Identifying population-level risk factors is essential for mitigation strategies.
  • Electronic Health Records (EHR) offer a valuable resource for studying these factors.

Purpose of the Study:

  • To identify preterm delivery risk factors.
  • To analyze the progression of these risk factors throughout pregnancy.
  • To leverage a large dataset of Electronic Health Records (EHR).

Main Methods:

  • Retrospective cohort study of approximately 60,000 deliveries in the USA.
  • Temporal analysis of risk factors at 0, 12, and 24 weeks gestation.
  • Utilized logistic regression and random forests models on EHR data.

Main Results:

  • History of previous preterm delivery identified as the strongest risk factor.
  • Risk ratios and variable importance varied across different gestational time points.
  • Identified known and novel preterm delivery risk factors.

Conclusions:

  • Risk factors identified in early pregnancy relate to patient history and chronic conditions.
  • Late pregnancy risk factors are specific to the current pregnancy.
  • Analysis provides insights into the dynamic nature of preterm birth risk factors over gestation.
Abstract

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