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Comparison of six statistical methods for interrupted time series studies: empirical evaluation of 190 published series

机译:六种统计方法对中断时间序列研究的比较:190年发布系列的实证评价

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The Interrupted Time Series (ITS) is a quasi-experimental design commonly used in public health to evaluate the impact of interventions or exposures. Multiple statistical methods are available to analyse data from ITS studies, but no empirical investigation has examined how the different methods compare when applied to real-world datasets. A random sample of 200 ITS studies identified in a previous methods review were included. Time series data from each of these studies was sought. Each dataset was re-analysed using six statistical methods. Point and confidence interval estimates for level and slope changes, standard errors, p-values and estimates of autocorrelation were compared between methods. From the 200 ITS studies, including 230 time series, 190 datasets were obtained. We found that the choice of statistical method can importantly affect the level and slope change point estimates, their standard errors, width of confidence intervals and p-values. Statistical significance (categorised at the 5% level) often differed across the pairwise comparisons of methods, ranging from 4 to 25% disagreement. Estimates of autocorrelation differed depending on the method used and the length of the series. The choice of statistical method in ITS studies can lead to substantially different conclusions about the impact of the interruption. Pre-specification of the statistical method is encouraged, and naive conclusions based on statistical significance should be avoided.
机译:中断的时间序列(其)是一种常用于公共卫生的准实验设计,以评估干预措施或曝光的影响。可以使用多种统计方法来分析来自其研究的数据,但没有实证调查已经检查了在应用于现实世界数据集时如何比较不同的方法。包括在以前的方法审查中确定的200个研究的随机样本。寻求来自这些研究中的每一个的时间序列数据。使用六种统计方法重新分析每个数据集。在方法之间比较水平和斜率变化,标准错误,p值和自相关的估计的点和置信区间估计。从200项研究中,包括230次时间序列,获得了190个数据集。我们发现统计方法的选择可以重要地影响水平和斜率变化点估计,其标准误差,置信区间宽度和p值。统计学意义(在5%水平上分类)通常不同于方法的比较比较,范围为4%至25%的分歧。自相关的估计值取决于所使用的方法和系列的长度。在其研究中的统计方法的选择可能会导致关于中断的影响的结论。鼓励预先规范,并避免基于统计显着性的幼稚结论。

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