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带信息区间删失失效事件的面板计数数据的半参数估计和检验。

Semiparametric estimation and testing for panel count data with informative interval-censored failure event.

机构信息

School of Mathematics and Statistics, Wuhan University, Wuhan, China.

Department of Biostatistics, City University of Hong Kong, Hong Kong, China.

出版信息

Stat Med. 2023 Dec 30;42(30):5596-5615. doi: 10.1002/sim.9927. Epub 2023 Oct 22.

Abstract

Panel count data and interval-censored data are two types of incomplete data that often occur in event history studies. Almost all existing statistical methods are developed for their separate analysis. In this paper, we investigate a more general situation where a recurrent event process and an interval-censored failure event occur together. To intuitively and clearly explain the relationship between the recurrent current process and failure event, we propose a failure time-dependent mean model through a completely unspecified link function. To overcome the challenges arising from the blending of nonparametric components and parametric regression coefficients, we develop a two-stage conditional expected likelihood-based estimation procedure. We establish the consistency, the convergence rate and the asymptotic normality of the proposed two-stage estimator. Furthermore, we construct a class of two-sample tests for comparison of mean functions from different groups. The proposed methods are evaluated by extensive simulation studies and are illustrated with the skin cancer data that motivated this study.

摘要

面板计数数据和区间删失数据是事件历史研究中经常出现的两种不完全数据。几乎所有现有的统计方法都是为它们的单独分析而开发的。在本文中,我们研究了一种更一般的情况,即复发事件过程和区间删失失效事件同时发生。为了直观清晰地解释复发电流过程和失效事件之间的关系,我们通过完全未指定的链接函数提出了一个失效时间相关的均值模型。为了克服非参数分量和参数回归系数混合带来的挑战,我们开发了一种两阶段条件期望似然估计程序。我们建立了所提出的两阶段估计量的一致性、收敛速度和渐近正态性。此外,我们构建了一类用于比较来自不同组的均值函数的两样本检验。通过广泛的模拟研究评估了所提出的方法,并通过激发这项研究的皮肤癌数据进行了说明。

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