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用于多变量竞争风险数据的半参数随机效应模型。

A semiparametric random effects model for multivariate competing risks data.

作者信息

Scheike Thomas H, Sun Yanqing, Zhang Mei-Jie, Jensen Tina Kold

机构信息

Department of Biostatistics , University of Copenhagen , Øster Farimagsgade 5, Copenhagen DK-1014 , Denmark

出版信息

Biometrika. 2010 Mar;97(1):133-145. doi: 10.1093/biomet/asp082.

Abstract

We propose a semiparametric random effects model for multivariate competing risks data when the failures of a particular type are of interest. Under this model, the marginal cumulative incidence functions follow a generalized semiparametric additive model. The associations between the cause-specific failure times can be studied through dependence parameters of copula functions that are allowed to depend on cluster-level covariates. A cross-odds ratio-type measure is proposed to describe the associations between cause-specific failure times, and its relationship to the dependence parameters is explored. We develop a two-stage estimation procedure where the marginal models are estimated in the first stage and the dependence parameters are estimated in the second stage. The large sample properties of the proposed estimators are derived. The proposed procedures are applied to Danish twin data to model the cumulative incidence for the age of natural menopause and to investigate the association in the onset of natural menopause between monozygotic and dizygotic twins.

摘要

当特定类型的失效情况受到关注时,我们针对多变量竞争风险数据提出了一种半参数随机效应模型。在此模型下,边际累积发病率函数遵循广义半参数加法模型。特定病因的失效时间之间的关联可以通过允许依赖聚类水平协变量的Copula函数的相依参数来研究。我们提出了一种交叉优势比类型的度量来描述特定病因的失效时间之间的关联,并探讨了它与相依参数的关系。我们开发了一种两阶段估计程序,其中在第一阶段估计边际模型,在第二阶段估计相依参数。推导了所提出估计量的大样本性质。所提出的程序应用于丹麦双胞胎数据,以对自然绝经年龄的累积发病率进行建模,并研究同卵双胞胎和异卵双胞胎在自然绝经 onset 方面的关联。

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