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Stillbirth Prediction: Current Approaches, Challenges, and Future Directions
Alexis A Doyle1, Nathan R Blue2
1Division of Maternal Fetal Medicine, Department of Obstetrics and Gynecology, University of Utah Health, Salt Lake City, UT, USA; Intermountain Health, Maternal Fetal Medicine. Salt Lake City, UT, USA.
Abstract:
Current approaches to stillbirth prediction are limited by datasets with a lack of clinical granularity, the restraints of traditional regression-based modeling, and inability to simultaneously account for the risks of stillbirth and of postnatal mortality. While external validation of risk stratification models in diverse populations remains a challenge, novel technologies show promise in addressing current limitations. Omics-based technologies and artificial intelligence-based approaches offer an avenue to improve mechanistic understanding and clinical prognostication. Novel approaches still require external validation and evaluation in clinical studies prior to implementation.
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