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Modeling the cumulative incidence function of multivariate competing risks data allowing for within-cluster dependence of risk and timing

机译:建模多变量竞争风险数据的累积发生率,允许在群体内依赖风险和时间

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摘要

We propose to model the cause-specific cumulative incidence function of multivariate competing risks data using a random effects model that allows for within-cluster dependence of both risk and timing. The model contains parameters that makes it possible to assess how the two are connected, e.g. if high-risk is related to early onset. Under the proposed model, the cumulative incidences of all failure causes are modeled and all cause-specific and cross-cause associations specified. Consequently, left-truncation and right-censoring are easily dealt with. The proposed model is assessed using simulation studies and applied in analysis of Danish register-based family data on breast cancer.
机译:我们建议使用允许在风险和时序的群集内依赖的随机效果模型来模拟多变量竞争风险数据的原因特异性竞争风险数据。 该模型包含可以评估两者如何连接的参数,例如, 如果高风险与早期发作有关。 在拟议的模型下,所有失败原因的累积发生率是建模的,并且指定的所有原因特定和交叉归属关联。 因此,左截断和右审查很容易处理。 使用模拟研究评估所提出的模型,并在乳腺癌上分析丹麦寄存器的家庭数据分析。

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