Bayesian CAR models for syndromic surveillance on multiple data streams: Theory and practice

نویسندگان

  • David Banks
  • Gauri Datta
  • Alan F. Karr
  • James Lynch
  • Jarad Niemi
  • Francisco Vera
چکیده

Syndromic surveillance has, so far, considered only simple models for Bayesian inference. This paper details the methodology for a serious, scalable solution to the problem of combining symptom data from a network of U.S. hospitals for early detection of disease outbreaks. The approach requires high-end Bayesian modeling and significant computation, but the strategy described in this paper appears to be feasible and offers attractive advantages over the methods that are currently used in this area. The method is illustrated by application to ten quarters worth of data on opioid drug abuse surveillance from 636 reporting centers, and then compared to two other syndromic surveillance methods using simulation to create known signal in the drug abuse database.

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عنوان ژورنال:
  • Information Fusion

دوره 13  شماره 

صفحات  -

تاریخ انتشار 2012