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Semiparametric estimation method for accelerated failure time model with dependent censoring

机译:相依删失的加速故障时间模型的半参数估计方法

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摘要

Independent censoring is commonly assumed in survival analysis. However, it may be questionable when censoring is related to event time. We model the event and censoring time marginally through accelerated failure time models, and model their association by a known copula. An iteration algorithm is proposed to estimate the regression parameters. Simulation results show the improvement of the proposed method compared to the naive method under independent censoring. Sensitivity analysis gives the evidences that the proposed method can obtain reasonable estimates even when the forms of copula are misspecified. We illustrate its application by analyzing prostate cancer data.
机译:生存分析中通常假定独立审查。但是,当审查与事件时间相关时可能会令人怀疑。我们通过加速失败时间模型对事件和审查时间进行少量建模,并通过已知的copula对其关联进行建模。提出了一种迭代算法来估计回归参数。仿真结果表明,与独立删失下的朴素方法相比,该方法得到了改进。敏感性分析提供了证据,证明即使所指法的形式不正确,该方法也可以获得合理的估计。我们通过分析前列腺癌数据来说明其应用。

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