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Flexible semi-parametric regression of state occupational probabilities in a multistate model with right-censored data

机译:具有右删失数据的多州模型中州职业概率的灵活半参数回归

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Inference for the state occupation probabilities, given a set of baseline covariates, is an important problem in survival analysis and time to event multistate data. We introduce an inverse censoring probability re-weighted semi-parametric single index model based approach to estimate conditional state occupation probabilities of a given individual in a multistate model under right-censoring. Besides obtaining a temporal regression function, we also test the potential time varying effect of a baseline covariate on future state occupation. We show that the proposed technique has desirable finite sample performances and its performance is competitive when compared with three other existing approaches. We illustrate the proposed methodology using two different data sets. First, we re-examine a well-known data set dealing with leukemia patients undergoing bone marrow transplant with various state transitions. Our second illustration is based on data from a study involving functional status of a set of spinal cord injured patients undergoing a rehabilitation program.
机译:给定一组基线协变量,对状态占用概率的推断是生存分析和事件多状态数据时间中的重要问题。我们引入了一种基于逆审查概率重新加权半参数单指标模型的方法,以估计在右审查下多状态模型中给定个体的条件状态占用概率。除了获得时间回归函数外,我们还测试了基线协变量对未来状态占领的潜在时变效应。我们表明,所提出的技术具有理想的有限样本性能,并且与其他三种现有方法相比,其性能具有竞争力。我们使用两个不同的数据集说明了所提出的方法。首先,我们重新检查一个众所周知的数据集,该数据集涉及正在经历各种状态转换的骨髓移植的白血病患者。我们的第二个例证基于一项研究的数据,该研究涉及一组接受康复计划的脊髓损伤患者的功能状态。

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