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首页> 外文期刊>Frontiers in Veterinary Science >Simulation Based Evaluation of Time Series for Syndromic Surveillance of Cattle in Switzerland
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Simulation Based Evaluation of Time Series for Syndromic Surveillance of Cattle in Switzerland

机译:基于仿真的瑞士牛综合监测时间序列评估

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Choosing the syndrome time series to monitor in a syndromic and surveillance system is not a straight forward process. Defining which syndromes to monitor in order to maximize detection performance has been recently identified as one of the research priorities in Syndromic surveillance. Estimating the minimum size of an epidemic that could potentially be detected in a specific syndrome could be used as a criteria for comparing the performance of different syndrome time series, and could provide some guidance for syndrome selection. The aim of our study was to estimate the potential value of different time series for building a national syndromic surveillance system for cattle in Switzerland. Simulations were used to produce outbreaks of different size and shape and to estimate the ability of each time series and aberration detection algorithm to detect them with high sensitivity, specificity and timeliness. Two temporal aberration detection algorithms were also compared: Holt–Winters generalized exponential smoothing (HW) and Exponential Weighted Moving Average (EWMA). Our results indicated that a specific aberration detection algorithm should be used for each time series. In addition, time series with high counts per unit of time had good overall detection performance, but poor detection performance for small epidemics making them of limited use for an early detection system. Estimating the minimum size of simulated epidemics that could potentially be detected in syndrome TS-event detection pairs can help surveillance system designers choosing the most appropriate syndrome TS to include in their early epidemic surveillance system.
机译:选择综合征时间序列以在综合征和监视系统中进行监视并不是一个直接的过程。最近,定义要监视的综合症以最大程度地提高检测性能已被视为综合症监护的研究重点之一。估计可能在特定综合症中检测到的流行病的最小规模,可以用作比较不同综合症时间序列性能的标准,并且可以为综合症选择提供一些指导。我们研究的目的是评估不同时间序列对瑞士建立国家牛群症状监测系统的潜在价值。模拟用于产生不同大小和形状的爆发,并估计每个时间序列和像差检测算法以高灵敏度,特异性和及时性检测它们的能力。还比较了两种时间像差检测算法:Holt-Winters广义指数平滑(HW)和指数加权移动平均值(EWMA)。我们的结果表明,应为每个时间序列使用特定的像差检测算法。此外,每单位时间具有较高计数的时间序列具有良好的整体检测性能,但对于小流行病而言,检测性能较差,因此它们在早期检测系统中的使用受到限制。估计可以在综合征TS事件检测对中潜在检测到的模拟流行病的最小大小,可以帮助监视系统设计人员选择最合适的TS综合征,以包括在他们的早期流行病监视系统中。

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