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赞扬 Prais-Winsten 法:对用于处理中断时间序列自相关的方法的评估。

In praise of Prais-Winsten: An evaluation of methods used to account for autocorrelation in interrupted time series.

机构信息

London School of Tropical Medicine & Hygiene, MRC International Statistics and Epidemiology Group, London, UK.

Department of Infectious Disease Epidemiology, London School of Hygiene & Tropical Medicine, London, UK.

出版信息

Stat Med. 2023 Apr 15;42(8):1277-1288. doi: 10.1002/sim.9669. Epub 2023 Feb 1.

Abstract

Interrupted time series are increasingly being used to assess the population impact of public health interventions. These data are usually correlated over time (auto correlated) and this must be accounted for in the analysis. Typically, this is done using either the Prais-Winsten method, the Newey-West method, or autoregressive-moving-average (ARMA) modeling. In this paper, we illustrate these methods via a study of pneumococcal vaccine introduction and explore their performance under 20 simulated autocorrelation scenarios with sample sizes ranging between 20 and 300. We show that in terms of mean square error, the Prais-Winsten and ARMA methods perform best, while in terms of coverage the Prais-Winsten method generally performs better than other methods. All three methods are unbiased. As well as having good statistical properties, the Prais-Winsten method is attractive because it is decision-free and produces a single measure of autocorrelation that can be compared between studies and used to guide sample size calculations. We would therefore encourage analysts to consider using this simple method to analyze interrupted time series.

摘要

间断时间序列分析越来越多地被用于评估公共卫生干预措施对人群的影响。这些数据通常随着时间的推移而相关(自相关),在分析中必须考虑到这一点。通常,这可以通过使用 Prais-Winsten 方法、Newey-West 方法或自回归移动平均(ARMA)模型来实现。在本文中,我们通过研究肺炎球菌疫苗接种的引入来说明这些方法,并在 20 种模拟自相关场景下对这三种方法进行了研究,样本量范围在 20 到 300 之间。我们表明,就均方误差而言,Prais-Winsten 和 ARMA 方法的性能最好,而在覆盖范围方面,Prais-Winsten 方法通常比其他方法表现更好。这三种方法都是无偏的。除了具有良好的统计性质外,Prais-Winsten 方法还具有吸引力,因为它是无决策的,并且可以产生一个可以在研究之间进行比较的自相关单一度量标准,并用于指导样本量计算。因此,我们鼓励分析师考虑使用这种简单的方法来分析间断时间序列。

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