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Dynamic multi-outcome prediction after injury: Applying adaptive machine learning for precision medicine in trauma.

Sabrinah Ariane ChristieAmanda S ConroyRachael A CallcutAlan E HubbardMitchell J Cohen
Published in: PloS one (2019)
Machine learning algorithms can be used to generate dynamic prediction after injury while avoiding the risk of over- and under-fitting inherent in ad hoc statistical approaches. SuperLearner prediction after injury demonstrates promise as an adaptable means of helping clinicians integrate voluminous, evolving data on severely-injured patients into real-time, dynamic decision-making support.
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