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文章基本信息

  • 标题:Validation of Analytic Methods for Combining Evidence Sources in Biosurveillance
  • 作者:Howard Burkom ; Yevgeniy Elbert ; Liane Ramac-Thomas
  • 期刊名称:Online Journal of Public Health Informatics
  • 电子版ISSN:1947-2579
  • 出版年度:2014
  • 卷号:6
  • 期号:1
  • 语种:English
  • 出版社:University of Illinois at Chicago
  • 摘要:To manage an increasingly complex data environment, a fusion module based on Bayesian networks (BN) was developed for the Dept. of Defense (DoD) Electronic Surveillance System for the Early Notification of Community-Based Epidemics (ESSENCE). Subsequent efforts have produced a full fusion-enabled version of ESSENCE for beta testing and further upgrades. The current presentation describes advances to formalize the network training, calibrate the component alerting algorithms and decision nodes together, and implement a validation strategy. A cross-validation strategy produced consistent threshold combinations yielding 88% sensitivity from reported events, a 10-15% improvement over the original demonstration module.
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