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Development and validation of an obstetric early warning system model for use in low resource settings.

Aminu UmarAlexander ManuMatthews MathaiCharles Anawo Ameh
Published in: BMC pregnancy and childbirth (2020)
We developed and validated statistical models that performed well in predicting SMO using data from a low resource settings. Based on these, we proposed a simple score based obstetric EWS algorithm with RR, temperature, systolic BP, pulse rate, consciousness level, urinary output and mode of birth that has a potential for clinical use in low-resource settings..
Keyphrases
  • blood pressure
  • pregnant women
  • heart failure
  • machine learning
  • left ventricular
  • electronic health record
  • atrial fibrillation