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Predicting hospitalization following psychiatric crisis care using machine learning.

Matthijs BlankersLouk F M van der PostJack J M Dekker
Published in: BMC medical informatics and decision making (2020)
Gradient Boosting led to the highest predictive accuracy and AUC while GLM/logistic regression performed average among the tested algorithms. Although statistically significant, the magnitude of the differences between the machine learning algorithms was in most cases modest. The results show that a predictive accuracy similar to the best performing model can be achieved when combining multiple algorithms in an ensemble model.
Keyphrases
  • machine learning
  • artificial intelligence
  • deep learning
  • big data
  • healthcare
  • public health
  • mental health
  • quality improvement
  • pain management
  • convolutional neural network
  • affordable care act