针对具有死亡竞争风险的复发事件的简单稳健的参数共享虚弱模型:卡维地洛前瞻性随机累积生存试验的应用

IF 1.6 3区 医学 Q3 HEALTH CARE SCIENCES & SERVICES
Jiren Sun, Thomas Cook
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引用次数: 0

摘要

许多非致命性事件可被视为复发性事件,因为它们会随着时间的推移反复发生,一些研究人员可能会对非致命性事件的轨迹和相对风险感兴趣。由于存在死亡的竞争风险,治疗对复发事件平均次数的影响是不可识别的,因为观察到的平均值是复发事件和终末事件过程的函数。在本文中,我们假定非致命性事件和终末事件过程之间具有独立性,并以共同的虚弱性为条件,拟合出一个参数模型,该模型可以还原存在死亡竞争风险时非致命性事件过程的轨迹,并确定治疗对非致命性事件过程的影响。我们进行了模拟研究,以验证我们的估计值的可靠性。我们使用涉及心衰事件的卡维地洛前瞻性随机累积生存试验来说明该方法并进行模型诊断。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A simple and robust parametric shared frailty model for recurrent events with the competing risk of death: An application to the Carvedilol Prospective Randomized Cumulative Survival trial
Many non-fatal events can be considered recurrent in that they can occur repeatedly over time, and some researchers may be interested in the trajectory and relative risk of non-fatal events. With the competing risk of death, the treatment effect on the mean number of recurrent events is non-identifiable since the observed mean is a function of both the recurrent event and terminal event processes. In this paper, we assume independence between the non-fatal and the terminal event process, conditional on the shared frailty, to fit a parametric model that recovers the trajectory of, and identifies the effect of treatment on, the non-fatal event process in the presence of the competing risk of death. Simulation studies are conducted to verify the reliability of our estimators. We illustrate the method and perform model diagnostics using the Carvedilol Prospective Randomized Cumulative Survival trial which involves heart-failure events.
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来源期刊
Statistical Methods in Medical Research
Statistical Methods in Medical Research 医学-数学与计算生物学
CiteScore
4.10
自引率
4.30%
发文量
127
审稿时长
>12 weeks
期刊介绍: Statistical Methods in Medical Research is a peer reviewed scholarly journal and is the leading vehicle for articles in all the main areas of medical statistics and an essential reference for all medical statisticians. This unique journal is devoted solely to statistics and medicine and aims to keep professionals abreast of the many powerful statistical techniques now available to the medical profession. This journal is a member of the Committee on Publication Ethics (COPE)
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