弥合鸿沟:解决生命过程流行病学和因果推理之间的紧张关系

Gabriel L. Schwartz, M. Maria Glymour
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引用次数: 0

摘要

生命过程流行病学家已经开发出了复杂的模型,用于研究从妊娠到老年的整个生命过程中,有时在暴露发生数年后,暴露是如何影响健康的。然而,该领域在采用稳健的因果推理方法(包括准实验设计)方面进展缓慢。这至少在一定程度上反映了(a)最大化我们提出因果关系的能力的研究设计和(b)与生命历程理论相对应的暴露操作化之间的紧张关系。在这篇叙述性评论中,我们试图缓和这种紧张关系。我们首先讨论生命过程流行病学因果推理的独特挑战。然后,我们概述了准实验方法如何已经为测试生命过程理论做出了贡献,以及其中的准实验方法的局限性。最后,我们提出解决方案,弥合因果推断和生命过程流行病学的现代发展之间的差距,包括重新定义估算,以最大限度地提高公共卫生影响;边缘结构和结构嵌套模型;纵向工具变量法;利用新的数据链接,例如详细的居住历史;以及跨方法的三角测量,包括采用多元方法进行因果推理。《发展心理学年度评论》第五卷的最终在线出版日期预计为2023年12月。修订后的估计数请参阅http://www.annualreviews.org/page/journal/pubdates。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bridging the Divide: Tackling Tensions Between Life-Course Epidemiology and Causal Inference
Life-course epidemiologists have developed sophisticated models for how exposures throughout life—from gestation to old age—shape health, sometimes years after the exposure occurred. The field, however, has been slow to adopt robust causal inference methods, including quasi-experimental designs. This reflects, at least in part, a tension between ( a) study designs that maximize our ability to make causal claims and ( b) exposure operationalizations that correspond with life-course theories. In this narrative review, we attempt to mitigate that tension. We first discuss the unique challenges for causal inference in life-course epidemiology. We then outline how quasi-experimental methods have already contributed to testing life-course theories, as well as the limitations of the quasi-experimental methods therein. We close with solutions that bridge the gap between modern developments in causal inference and life-course epidemiology, including redefined estimands to maximize public health impact; marginal structural and structural nested models; longitudinal instrumental variables approaches; leveraging new data linkages, such as with detailed residential histories; and triangulation across methods, including adopting a pluralistic approach to causal inference. Expected final online publication date for the Annual Review of Developmental Psychology, Volume 5 is December 2023. Please see http://www.annualreviews.org/page/journal/pubdates for revised estimates.
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