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Using Bayes Rule to Define the Value of Evidence from Syndromic Surveillance

机译:使用贝叶斯法则来定义综合征监测的证据价值

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摘要

In this work we propose the adoption of a statistical framework used in the evaluation of forensic evidence as a tool for evaluating and presenting circumstantial “evidence” of a disease outbreak from syndromic surveillance. The basic idea is to exploit the predicted distributions of reported cases to calculate the ratio of the likelihood of observing n cases given an ongoing outbreak over the likelihood of observing n cases given no outbreak. The likelihood ratio defines the Value of Evidence (V). Using Bayes' rule, the prior odds for an ongoing outbreak are multiplied by V to obtain the posterior odds. This approach was applied to time series on the number of horses showing clinical respiratory symptoms or neurological symptoms. The separation between prior beliefs about the probability of an outbreak and the strength of evidence from syndromic surveillance offers a transparent reasoning process suitable for supporting decision makers. The value of evidence can be translated into a verbal statement, as often done in forensics or used for the production of risk maps. Furthermore, a Bayesian approach offers seamless integration of data from syndromic surveillance with results from predictive modeling and with information from other sources such as disease introduction risk assessments.
机译:在这项工作中,我们建议采用一种用于评估法医证据的统计框架,作为评估和呈现症状监测所致疾病的环境“证据”的工具。基本思想是利用报告病例的预测分布来计算在持续爆发的情况下观察n病例的可能性与在没有爆发情况下观察n病例的可能性的比率。似然比定义了证据值(V)。使用贝叶斯规则,将持续爆发的先验几率乘以V,即可得出后验几率。此方法应用于显示临床呼吸道症状或神经系统症状的马匹的时间序列。关于爆发可能性的先验信念与综合症监测的证据强度之间的区别提供了适用于支持决策者的透明推理过程。证据的价值可以转化为口头陈述,就像法医经常做的那样或用于制作风险图。此外,贝叶斯方法可将综合症监测数据与预测模型的结果以及疾病引入风险评估等其他来源的信息无缝集成。

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