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Nested exposure case-control sampling: a sampling scheme to analyze rare time-dependent exposures

机译:嵌套暴露病例对照抽样:一种分析稀有时间相关暴露的抽样方案

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For large cohort studies with rare outcomes, the nested case-control design only requires data collection of small subsets of the individuals at risk. These are typically randomly sampled at the observed event times and a weighted, stratified analysis takes over the role of the full cohort analysis. Motivated by observational studies on the impact of hospital-acquired infection on hospital stay outcome, we are interested in situations, where not necessarily the outcome is rare, but time-dependent exposure such as the occurrence of an adverse event or disease progression is. Using the counting process formulation of general nested case-control designs, we propose three sampling schemes where not all commonly observed outcomes need to be included in the analysis. Rather, inclusion probabilities may be time-dependent and may even depend on the past sampling and exposure history. A bootstrap analysis of a full cohort data set from hospital epidemiology allows us to investigate the practical utility of the proposed sampling schemes in comparison to a full cohort analysis and a too simple application of the nested case-control design, if the outcome is not rare.
机译:对于结果少见的大型队列研究,嵌套病例对照设计仅需要收集风险个体的一小部分的数据。通常在观察到的事件时间对它们进行随机采样,然后进行加权的分层分析来代替整个队列分析。基于对医院获得性感染对住院时间影响的观察性研究的推动,我们对以下情况感兴趣,在这种情况下,结果不一定是罕见的,而是时间依赖性暴露,例如不良事件的发生或疾病的进展。使用通用嵌套案例控制设计的计数过程公式,我们提出了三种采样方案,其中并非所有通常观察到的结果都需要包括在分析中。相反,包含概率可能与时间有关,甚至可能取决于过去的采样和暴露历史。对来自医院流行病学的完整队列数据集进行引导分析,使我们能够与提议的抽样方案相比,对完整队列分析和嵌套病例对照设计的过于简单的应用进行调查,如果结果不是很罕见的话。

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