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Predicting mortality among septic patients presenting to the emergency department-a cross sectional analysis using machine learning.

Adam KarlssonWillem StassenAmy LoutfiUlrika Margareta WallgrenEric LarssonLisa Kurland
Published in: BMC emergency medicine (2021)
The results suggest that six specific variables were predictive of 7- and 30-day mortality with good accuracy which suggests that these symptoms, observations and mode of arrival may be important components to include along with vital signs in a future prediction tool of mortality among septic patients presenting to the ED. In addition, the Random Forests appears to be a suitable machine learning method on which to build future studies.
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