Prediction of clinical outcomes in women with placenta accreta spectrum using machine learning models: an

Sherif A Shazly1, Ismet Hortu2, Jin-Chung Shih3

  • 1Department of Obstetrics and Gynaecology, Assiut University, Assiut, Egypt.

Insights

Machine learning models can predict complications in placenta accreta spectrum (PAS) pregnancies. These models assess individualized risks for massive blood loss, prolonged hospitalization, and ICU admission, aiding in management planning.

Area of Science:

  • Obstetrics and Gynecology
  • Medical Informatics
  • Machine Learning in Healthcare

Background:

  • Placenta accreta spectrum (PAS) is a severe obstetric complication with high rates of maternal morbidity and mortality.
  • Effective prediction of clinical outcomes in PAS is crucial for optimizing patient management and improving safety.

Purpose of the Study:

  • To develop and validate machine learning (ML) models for predicting clinical outcomes in women with PAS.
  • To identify key antepartum and perioperative factors contributing to adverse outcomes in PAS.

Main Methods:

  • An international multicenter study (PAS-ID) included 727 women diagnosed with PAS between 2010 and 2019.
  • Two ML models were developed using Python to predict massive blood loss, prolonged hospitalization (>7 days), and ICU admission.
  • Models utilized antepartum features and combined antepartum with perioperative variables.

Main Results:

  • The ML antepartum model achieved AUCs of 0.84 (blood loss), 0.81 (hospitalization), and 0.82 (ICU admission).
  • Key predictors included parity, placental site, diagnosis method, and antepartum hemoglobin.
  • The combined model showed improved performance (AUCs 0.86, 0.90, 0.86) with ethnicity, pelvic invasion, and uterine incision as significant factors.

Conclusions:

  • ML models offer a robust method for calculating individualized morbidity risks in women with PAS.
  • These predictive models can facilitate proactive management strategies and improve patient care planning.
Abstract

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