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Panel discussion review: session three--issues involved in interpretation of epidemiologic analyses--statistical modeling.

机译:小组讨论综述:第三节 - 流行病学分析解释中涉及的问题 - 统计建模。

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摘要

The Clean Air Act mandates that the US Environmental Protection Agency (EPA) develop National Ambient Air Quality Standards for criteria air pollutants and conduct periodic reviews of the standards based on new scientific evidence. In recent reviews, evidence from epidemiologic studies has played a key role. Epidemiologic studies often provide evidence for effects of several air pollutants. Determining whether there are independent effects of the separate pollutants is a challenge. Among the many issues confronting the interpretation of epidemiologic studies of multi-pollutant exposures and health effects are those specifically related to statistical modeling. The EPA convened a workshop on 13 and 14 December 2006 in Chapel Hill, North Carolina, USA, to discuss these and other issues; Session Three of the workshop was devoted specifically to statistical modeling. Prominent statistical modeling issues in epidemiologic studies of air pollution include (1) measurement error across the co-pollutants; (2) correlation and multi-collinearity among the co-pollutants; (3) the timing of the concentration-response function; (4) confounding; and (5) spatial analyses.
机译:清洁航空法案要求美国环境保护局(EPA)为标准空气污染物制定国家环境空气质量标准,并根据新的科学证据对标准进行定期审查。在最近的评价中,流行病学研究的证据发挥了关键作用。流行病学研究通常提供几种空气污染物的影响。确定单独污染物是否有独立的效果是挑战。在对多污染物暴露和健康效果的分类性研究的解释的许多问题中,是与统计建模有关的那些。美国环保署于2006年12月13日和14日在美国北卡罗来纳州北卡罗来纳州的教堂山,讨论了这些讲习班,讨论了这些和其他问题;会议三位研讨会专门用于统计建模。空气污染流行病学研究中的突出统计学建模问题包括(1)共污染物的测量误差; (2)共污染物之间的相关性和多联合性; (3)浓度响应函数的定时; (4)混杂; (5)空间分析。

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