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Joint analysis of interval-censored failure time data and panel count data

机译:联合分析间隔检查的故障时间数据和面板计数数据

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摘要

Interval-censored failure time data and panel count data are two types of incomplete data that commonly occur in event history studies and many methods have been developed for their analysis separately (Sun in The statistical analysis of interval-censored failure time data. ; Sun and Zhao in The statistical analysis of panel count data. ). Sometimes one may be interested in or need to conduct their joint analysis such as in the clinical trials with composite endpoints, for which it does not seem to exist an established approach in the literature. In this paper, a sieve maximum likelihood approach is developed for the joint analysis and in the proposed method, Bernstein polynomials are used to approximate unknown functions. The asymptotic properties of the resulting estimators are established and in particular, the proposed estimators of regression parameters are shown to be semiparametrically efficient. In addition, an extensive simulation study was conducted and the proposed method is applied to a set of real data arising from a skin cancer study.
机译:间隔检查的故障时间数据和面板计数数据是事件历史研究中常见的两种不完整数据类型,并且已经开发出许多方法来对其进行单独分析(Sun在“间隔检查的故障时间数据的统计分析”中; Sun和赵中的面板计数数据的统计分析。)有时,例如在具有复合终点的临床试验中,可能对联合分析感兴趣或需要进行联合分析,而在文献中似乎还没有确定的方法。本文提出了一种筛分最大似然方法进行联合分析,并在该方法中使用伯恩斯坦多项式来近似未知函数。建立了所得估计量的渐近性质,尤其是,所提出的回归参数估计量显示为半参数有效。此外,进行了广泛的模拟研究,并将所提出的方法应用于皮肤癌研究产生的一组真实数据。

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