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On the equivalence of case-crossover and time series methods in environmental epidemiology

机译:环境流行病学中病例交叉法和时间序列法的等效性

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摘要

The case-crossover design was introduced in epidemiology 15 years ago as a method for studying the effects of a risk factor on a health event using only cases. The idea is to compare a case's exposure immediately prior to or during the case-defining event with that same person's exposure at otherwise similar "reference" times. An alternative approach to the analysis of daily exposure and case-only data is time series analysis. Here, log-linear regression models express the expected total number of events on each day as a function of the exposure level and potential confounding variables. In time series analyses of air pollution, smooth functions of time and weather are the main confounders. Time series and case-crossover methods are often viewed as competing methods. In this paper, we show that case-crossover using conditional logistic regression is a special case of time series analysis when there is a common exposure such as in air pollution studies. This equivalence provides computational convenience for case-crossover analyses and a better understanding of time series models. Time series log-linear regression accounts for overdispersion of the Poisson variance, while case-crossover analyses typically do not. This equivalence also permits model checking for case-crossover data using standard log-linear model diagnostics.
机译:病例交叉设计是15年前在流行病学中引入的一种方法,用于仅使用病例研究危险因素对健康事件的影响。想法是将案例定义事件之前或期间的案例曝光与在其他相似的“参考”时间与同一个人的曝光进行比较。每日暴露和仅病例数据分析的另一种方法是时间序列分析。在这里,对数线性回归模型将每天的预期事件总数表示为暴露水平和潜在混淆变量的函数。在空气污染的时间序列分析中,时间和天气的平稳功能是主要的混杂因素。时间序列和案例交叉方法通常被视为竞争方法。在本文中,我们证明了在有常见暴露(例如在空气污染研究中)的情况下,使用条件逻辑回归进行案例交叉是时间序列分析的特例。这种等效为案例交叉分析提供了计算上的便利,并更好地理解了时间序列模型。时间序列对数线性回归说明了泊松方差的过度分散,而案例交叉分析通常没有。这种等效性还允许使用标准对数线性模型诊断程序对个案交叉数据进行模型检查。

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