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Valid statistical inference methods for a case-control study with missing data

机译:缺失数据的案例控制研究的有效统计推理方法

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The main objective of this paper is to derive the valid sampling distribution of the observed counts in a case-control study with missing data under the assumption of missing at random by employing the conditional sampling method and the mechanism augmentation method. The proposed sampling distribution, called the case-control sampling distribution, can be used to calculate the standard errors of the maximum likelihood estimates of parameters via the Fisher information matrix and to generate independent samples for constructing small-sample bootstrap confidence intervals. Theoretical comparisons of the new case-control sampling distribution with two existing sampling distributions exhibit a large difference. Simulations are conducted to investigate the influence of the three different sampling distributions on statistical inferences. One finding is that the conclusion by the Wald test for testing independency under the two existing sampling distributions could be completely different (even contradictory) from the Wald test for testing the equality of the success probabilities in control/case groups under the proposed distribution. A real cervical cancer data set is used to illustrate the proposed statistical methods.
机译:本文的主要目的是通过采用条件采样方法和机制增强方法,从缺失的假设下丢失数据,从丢失数据中获得有效的采样分布。所提出的采样分布称为案例控制采样分布,可用于通过Fisher信息矩阵计算参数的最大似然估计的标准误差,并生成用于构建小样本自动启动置信区间的独立样本。具有两个现有采样分布的新案例控制采样分布的理论比较表现出很大的差异。进行仿真以研究三种不同采样分布对统计推论的影响。一个发现是,在两个现有的采样分布下,沃尔德测试对测试独立性的结论可能是完全不同的(甚至是矛盾的),从WALD测试中测试了在拟议分布下控制/案例组中的成功概率等平等。真正的宫颈癌数据集用于说明所提出的统计方法。

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