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Syndromic surveillance using veterinary laboratory data: data pre-processing and algorithm performance evaluation

机译:使用兽医实验室数据进行症状监测:数据预处理和算法性能评估

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摘要

Diagnostic test orders to an animal laboratory were explored as a data source for monitoring trends in the incidence of clinical syndromes in cattle. Four years of real data and over 200 simulated outbreak signals were used to compare pre-processing methods that could remove temporal effects in the data, as well as temporal aberration detection algorithms that provided high sensitivity and specificity. Weekly differencing demonstrated solid performance in removing day-of-week effects, even in series with low daily counts. For aberration detection, the results indicated that no single algorithm showed performance superior to all others across the range of outbreak scenarios simulated. Exponentially weighted moving average charts and Holt-Winters exponential smoothing demonstrated complementary performance, with the latter offering an automated method to adjust to changes in the time series that will likely occur in the future. Shewhart charts provided lower sensitivity but earlier detection in some scenarios. Cumulative sum charts did not appear to add value to the system; however, the poor performance of this algorithm was attributed to characteristics of the data monitored. These findings indicate that automated monitoring aimed at early detection of temporal aberrations will likely be most effective when a range of algorithms are implemented in parallel.
机译:探索了对动物实验室的诊断测试命令,作为监测牛临床综合征发生趋势的数据源。四年的真实数据和200多个模拟的爆发信号用于比较可以消除数据中时间影响的预处理方法,以及提供高灵敏度和特异性的时间像差检测算法。每周差异显示出消除周日影响的稳定表现,即使是在每日计数很少的情况下。对于像差检测,结果表明,在模拟的爆发场景范围内,没有一种算法能显示出比其他算法更好的性能。指数加权移动平均线图和Holt-Winters指数平滑显示了互补的性能,后者提供了一种自动方法来适应将来可能发生的时间序列变化。 Shewhart图表提供了较低的灵敏度,但在某些情况下更早地被发现。累积和图似乎并未为系统增加价值;但是,该算法性能差的原因在于所监视数据的特征。这些发现表明,当并行实施一系列算法时,旨在及早检测时间像差的自动监视将最有效。

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