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首页> 外文期刊>American Journal of Applied Mathematics and Statistics >Modification of the Sandwich Estimator in Generalized Estimating Equations with Correlated Binary Outcomes in Rare Event and Small Sample Settings
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Modification of the Sandwich Estimator in Generalized Estimating Equations with Correlated Binary Outcomes in Rare Event and Small Sample Settings

机译:稀有事件和小样本设置下具有相关二元结果的广义估计方程中对Sandwich估计的修改

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Regression models for correlated binary outcomes are commonly fit using a Generalized Estimating Equations (GEE) methodology. GEE uses the Liang and Zeger sandwich estimator to produce unbiased standard error estimators for regression coefficients in large sample settings even when the covariance structure is misspecified. The sandwich estimator performs optimally in balanced designs when the number of participants is large, and there are few repeated measurements. The sandwich estimator is not without drawbacks; its asymptotic properties do not hold in small sample settings. In these situations, the sandwich estimator is biased downwards, underestimating the variances. In this project, a modified form for the sandwich estimator is proposed to correct this deficiency. The performance of this new sandwich estimator is compared to the traditional Liang and Zeger estimator as well as alternative forms proposed by Morel, Pan and Mancl and DeRouen. The performance of each estimator was assessed with 95% coverage probabilities for the regression coefficient estimators using simulated data under various combinations of sample sizes and outcome prevalence values with an Independence (IND), Autoregressive (AR) and Compound Symmetry (CS) correlation structure. This research is motivated by investigations involving rare-event outcomes in aviation data.
机译:相关二进制结果的回归模型通常使用广义估计方程(GEE)方法进行拟合。 GEE使用Liang和Zeger三明治估计器为大样本设置中的回归系数生成无偏标准误差估计器,即使协方差结构指定不正确也是如此。当参与者数量很大且重复测量很少时,三明治式估算器在平衡设计中会达到最佳性能。三明治估计器并非没有缺点。它的渐近特性在小样本设置中不成立。在这些情况下,三明治式估算器向下偏置,从而低估了方差。在该项目中,提出了一种针对三明治估计器的改进形式来纠正此不足。将该新型三明治估计器的性能与传统的Liang和Zeger估计器以及Morel,Pan和Mancl和DeRouen提出的替代形式进行了比较。使用具有独立(IND),自回归(AR)和复合对称(CS)相关结构的样本大小和结果患病率值的各种组合下的模拟数据,以回归系数估计量的95%覆盖率评估每个估计量的性能。这项研究的动机是涉及航空数据中罕见事件结局的调查。

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