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Using decision fusion methods to improve outbreak detection in disease surveillance.

Gaetan TexierRodrigue S AllodjiLoty DiopJean-Baptiste MeynardLiliane PellegrinHervé Chaudet
Published in: BMC medical informatics and decision making (2019)
To identify disease outbreaks in systems using several ODAs to analyze surveillance data, we recommend using a DF method based on a Bayesian network. This method is at least equivalent to the best of the algorithms considered, regardless of the situation faced by the system. For those less familiar with this kind of technique, we propose that logistic regression be used when a training dataset is available.
Keyphrases
  • public health
  • machine learning
  • data analysis
  • virtual reality
  • infectious diseases