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首页> 外文期刊>Statistica Sinica >QUANTILE REGRESSION FOR COMPETING RISKS DATA WITH MISSING CAUSE OF FAILURE
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QUANTILE REGRESSION FOR COMPETING RISKS DATA WITH MISSING CAUSE OF FAILURE

机译:失败原因缺失的竞争风险数据的量化回归

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摘要

This paper considers generalized linear quantile regression for competing risks data when the failure type may be missing. Two estimation procedures for the regression coefficients, including an inverse probability weighted complete-case estimator and an augmented inverse probability weighted estimator, are discussed under the assumption that the failure type is missing at random. The proposed estimation procedures utilize supplemental auxiliary variables for predicting the missing failure type and for informing its distribution. The asymptotic properties of the two estimators are derived and their asymptotic efficiencies are compared. We show that the augmented estimator is more efficient and possesses a double robustness property against misspecification of either the model for missingness or for the failure type. The asymptotic covariances are estimated using the local functional linearity of the estimating functions. The finite sample performance of the proposed estimation procedures are evaluated through a simulation study. The methods are applied to analyze the 'Mashi' trial data for investigating the effect of formula- versus breast-feeding plus extended infant zidovudine prophylaxis on HIV-related death of infants born to HIV-infected mothers in Botswana.
机译:当故障类型可能丢失时,本文考虑了竞争风险数据的广义线性分位数回归。在假定故障类型随机丢失的情况下,讨论了两种回归系数的估计程序,包括逆概率加权完整案例估计器和增广逆概率加权估计器。所提出的估计程序利用补充辅助变量来预测丢失的故障类型并通知其分布。推导了两个估计量的渐近性质,并比较了它们的渐近效率。我们表明,增强估计量更有效,并且具有双重健壮性,可防止模型因缺失或故障类型而误指定。使用估计函数的局部函数线性来估计渐近协方差。通过模拟研究评估了所提出估计程序的有限样本性能。该方法被用于分析“ Mashi”试验数据,以调查配方奶喂养与母乳喂养加延长的齐多夫定预防措施对博茨瓦纳艾滋病毒感染母亲所生婴儿的艾滋病毒相关死亡的影响。

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