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Testing for violations of the homogeneity needed for conditional logistic regression

机译:测试违反条件逻辑回归所需的同质性

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摘要

In epidemiologic studies where the outcome is binary, the data often arise as clusters, as when siblings, friends or neighbors are used as matched controls in a case-control study. Conditional logistic regression (CLR) is typically used for such studies to estimate the odds ratio for an exposure of interest. However, CLR assumes the exposure coefficient is the same in every cluster, and CLR-based inference can be badly biased when homogeneity is violated. Existing methods for testing goodness-of-fit for CLR are not designed to detect such violations. Good alternative methods of analysis exist if one suspects there is heterogeneity across clusters. However, routine use of alternative robust approaches when there is no appreciable heterogeneity could cause loss of precision and be computationally difficult, particularly if the clusters are small. We propose a simple non-parametric test, the test of heterogeneous susceptibility (THS), to assess the assumption of homogeneity of a coefficient across clusters. The test is easy to apply and provides guidance as to the appropriate method of analysis. Simulations demonstrate that the THS has reasonable power to reveal violations of homogeneity. We illustrate by applying the THS to a study of periodontal disease.
机译:在结果为二元的流行病学研究中,数据通常以簇的形式出现,例如在病例对照研究中将兄弟姐妹,朋友或邻居用作匹配的对照时。条件逻辑回归(CLR)通常用于此类研究,以估算感兴趣的风险的比值比。但是,CLR假定每个群集中的曝光系数都相同,并且在违反同质性时,基于CLR的推理可能会严重偏倚。现有的测试CLR拟合优度的方法并非旨在检测此类违反情况。如果怀疑集群之间存在异质性,则存在一种很好的替代分析方法。但是,当没有明显的异质性时,常规使用替代鲁棒方法可能会导致精度降低,并且计算困难,尤其是在簇很小的情况下。我们提出了一个简单的非参数检验,即异质磁化系数(THS)检验,以评估整个集群系数均一性的假设。该测试易于应用,并为适当的分析方法提供了指导。模拟表明,THS具有揭示同质性违规的合理能力。我们通过将THS应用于牙周疾病的研究来举例说明。

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