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Maximum likelihood estimation for semiparametric transformation models withinterval-censored data

机译:具有的半参数变换模型的最大似然估计。间隔检查数据

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摘要

Interval censoring arises frequently in clinical, epidemiological, financial and sociological studies, where the event or failure of interest is known only to occur within an interval induced by periodic monitoring. We formulate the effects of potentially time-dependent covariates on the interval-censored failure time through a broad class of semiparametric transformation models that encompasses proportional hazards and proportional odds models. We consider nonparametric maximum likelihood estimation for this class of models with an arbitrary number of monitoring times for each subject. We devise an EM-type algorithm that converges stably, even in the presence of time-dependent covariates, and show that the estimators for the regression parameters are consistent, asymptotically normal, and asymptotically efficient with an easily estimated covariance matrix. Finally, we demonstrate the performance of our procedures through simulation studies and application to an HIV/AIDS study conducted in Thailand.
机译:间隔检查在临床,流行病学,财务和社会学研究中经常出现,其中已知的事件或失败仅发生在定期监测引起的间隔内。我们通过一类广泛的半参数转换模型(包括比例风险和比例赔率模型),制定了时间相关协变量对区间检查失效时间的影响。我们考虑针对此类模型的非参数最大似然估计,并对每个主题进行任意数量的监视。我们设计了一种即使在存在时间相关协变量的情况下也能稳定收敛的EM型算法,并表明回归参数的估计量与一致变量矩阵一致,渐近正态且渐近有效。最后,我们通过模拟研究和将其应用于泰国进行的HIV / AIDS研究来证明我们程序的性能。

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