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Missing data in the 2x2 table: patterns and likelihood-based analysis for cross-sectional studies with supplemental sampling.

机译:2x2表中的数据缺失:采用补充抽样的横断面研究的模式和基于似然性的分析。

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Standard measures of crude association in the context of a cross-sectional study are the risk difference, relative risk and odds ratio as derived from a 2x 2 table. Most such studies are subject to missing data on disease, exposure, or both, introducing bias into the usual complete-case analysis. We describe several scenarios distinguished by the manner in which missing data arise, and for each we adjust the natural multinomial likelihood to properly account for missing data. The situations presented allow for increasing levels of generality with regard to the missing data mechanism. The final case, quite conceivable in epidemiologic studies, assumes that the probability of missing exposure depends on true exposure and disease status, as well as upon whether disease status is missing (and conversely for the probability of missing disease information). When parameters relating to the missing data process are inestimable without strong assumptions, we propose maximum likelihood analysis subsequent to collecting supplemental data in the spirit of a validation study. Analytical results give insight into the bias inherent in complete-case analysis for each scenario, and numerical results illustrate the performance of likelihood-based point and interval estimates in the most general case. Adjustment for potential confounders via stratified analysis is also discussed.
机译:在横断面研究中,原油协会的标准衡量标准是源自2x 2表的风险差异,相对风险和优势比。大多数此类研究都缺少有关疾病,暴露或两者的数据,这在通常的完整病例分析中引入了偏见。我们描述了几种情况,这些情况通过丢失数据的出现方式来区分,并且每种情况下,我们都调整自然多项式似然性以正确考虑丢失数据。所呈现的情况允许在缺失数据机制方面提高通用性。在流行病学研究中很可能想到的最后一个案例是,假设暴露缺失的可能性取决于真实的暴露和疾病状况,以及疾病状况是否缺失(以及疾病信息缺失的可能性)。如果在没有强力假设的情况下无法估计与缺失数据过程相关的参数,则本着验证研究的精神,建议在收集补充数据之后进行最大似然分析。分析结果可以洞悉每种情况下完整案例分析中固有的偏差,而数值结果则说明了在最一般情况下基于似然的点和区间估计的性能。还讨论了通过分层分析对潜在混杂因素的调整。

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