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Inference based on the Em algorithm for the competing risks model with masked causes of failure

机译:基于Em算法的带隐含故障原因的竞争风险模型推理

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摘要

In this paper we propose inference methods based on the Em algorithm for estimating the parameters of a weakly parameterised competing risks model with masked causes of failure and second-stage data. With a carefully chosen definition of complete data, the maximum likelihood estimation of the cause-specific hazard functions and of the masking probabilities is performed via an Em algorithm. Both the E- and m-steps can be solved in closed form under the full model and under some restricted models of interest. We illustrate the flexibility of the method by showing how grouped data and tests of common hypotheses in the literature on missing cause of death can be handled. The method is applied to a real dataset and the asymptotic and robustness properties of the estimators are investigated through simulation.
机译:在本文中,我们提出了一种基于Em算法的推理方法,该方法用于估计带有隐性故障原因和第二阶段数据的弱参数化竞争风险模型的参数。通过仔细选择完整数据的定义,可以通过Em算法对特定原因的危害函数和掩盖概率进行最大似然估计。 E步和m步都可以在完整模型和某些受限制的模型下以封闭形式求解。我们通过展示如何处理丢失的死亡原因的文献中的分组数据和常见假设检验来说明该方法的灵活性。将该方法应用于实际数据集,并通过仿真研究了估计量的渐近性和鲁棒性。

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