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Nonparametric analysis of dependently interval‐censored failure time data

机译:非参数分析依赖性间隔缩短的故障时间数据

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Failure time studies based on observational cohorts often have to deal with irregular intermittent observation of individuals, which produces interval‐censored failure times. When the observation times depend on factors related to a person's failure time, the failure times may be dependently interval censored. Inverse‐intensity‐of‐visit weighting methods have been developed for irregularly observed longitudinal or repeated measures data and recently extended to parametric failure time analysis. This article develops nonparametric estimation of failure time distributions using weighted generalized estimating equations and monotone smoothing techniques. Simulations are conducted for examination of the finite sample performance of proposed estimators. This research is motivated in part by the Toronto Psoriatic Arthritis Cohort Study, and the proposed methodology is applied to this study.
机译:基于观察队队的失败时间研究通常必须处理不规则的个体间歇观察,这会产生间隔缩短的失效时间。 当观察时间取决于与人的失效时间相关的因素时,故障时间可能依赖于审查间隔。 已经开发了逆强度的访问权重方法,用于不规则观察到的纵向或重复测量数据,最近扩展到参数故障时间分析。 本文使用加权广义估计方程和单调平滑技术开发了失效时间分布的非参数估计。 进行仿真以检查提出估计的有限样本性能。 该研究部分地由多伦多银屑病关节炎队列研究有动力,该研究适用于本研究。

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