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Count data regression charts for the monitoring of surveillance time series

机译:计数数据回归图以监视监视时间序列

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Control charts based on the Poisson and negative binomial distribution for monitoring time series of counts typically arising in the surveillance of infectious diseases are presented. The in-control mean is assumed to be time-varying and linear on the log-scale with intercept and seasonal components. If a shift in the intercept occurs the system goes out-of-control. Using the generalized likelihood ratio (GLR) statistic a monitoring scheme is formulated to detect on-line whether a shift in the intercept occurred. In the case of Poisson the necessary quantities of the GLR detector can be efficiently computed by recursive formulas. Extensions to more general alternatives e.g. containing an auto-regressive epidemic component are discussed. Using Monte Carlo simulations run-length properties of the proposed schemes are investigated and the Poisson scheme is compared to existing methods. The practicability of the charts is demonstrated by applying them to the observed number of salmonella hadar cases in Germany 2001-2006.
机译:提出了基于泊松和负二项式分布的控制图,用于监控通常在传染病监测中出现的计数时间序列。控制中均值假定是随时间变化的,并且在对数刻度上具有截距和季节分量,呈线性关系。如果拦截发生变化,则系统将失去控制。使用广义似然比(GLR)统计信息,制定了一种监控方案,以在线检测是否发生了截距变化。对于Poisson,可以通过递归公式有效地计算GLR检测器的必要数量。扩展到更通用的替代方案,例如讨论了包含自回归流行成分的疾病。使用蒙特卡洛模拟研究了所提出的方案的游程长度特性,并将泊松方案与现有方法进行了比较。通过将图表应用于德国2001-2006年观察到的沙门氏菌病例数,证明了图表的实用性。

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