John D. Lewis, Atiyeh A. Miran, Michelle Stoopler, Helen M. Branson, Ashley Danguecan, Krishna Raghu, Linh G. Ly, Mehmet N. Cizmeci, Brian T. Kalish
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Automated Neuroprognostication via Machine Learning in Neonates with Hypoxic-Ischemic Encephalopathy
Objectives Neonatal hypoxic-ischemic encephalopathy is a serious neurologic condition associated with death or neurodevelopmental impairments. Magnetic resonance imaging (MRI) is routinely used for neuroprognostication, but there is substantial subjectivity and uncertainty about neurodevelopmental outcome prediction. We sought to develop an objective and automated approach for the analysis of newborn brain MRI to improve the accuracy of prognostication.