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Predictive accuracy of particle filtering in dynamic models supporting outbreak projections.

Anahita SafarishahrbijariAydin TeyhoueeCheryl WaldnerJuxin LiuNathaniel D Osgood
Published in: BMC infectious diseases (2017)
Combining dynamic models with particle filtering can perform well in projecting future evolution of an outbreak. Most importantly, the remarkable improvements in predictive accuracy resulting from more frequent sampling suggest that investments to achieve efficient reporting mechanisms may be more than paid back by improved planning capacity. The robustness of the results on particle filter configuration in this case study suggests that it may be possible to formulate effective standard guidelines and regularized approaches for such techniques in particular epidemiological contexts. Most importantly, the work tentatively suggests potential for health decision makers to secure strong guidance when anticipating outbreak evolution for emerging infectious diseases by combining even very rough models with particle filtering method.
Keyphrases
  • infectious diseases
  • healthcare
  • public health
  • current status
  • clinical practice
  • health information
  • adverse drug
  • social media
  • human health