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复发性感染过程中时变异质性的建模:血清学数据的应用。

Modelling time varying heterogeneity in recurrent infection processes: an application to serological data.

作者信息

Abrams Steven, Wienke Andreas, Hens Niel

机构信息

Hasselt University Diepenbeek Belgium.

Martin Luther University Halle-Wittenberg Halle Germany.

出版信息

J R Stat Soc Ser C Appl Stat. 2018 Apr;67(3):687-704. doi: 10.1111/rssc.12236. Epub 2017 Aug 8.

Abstract

Frailty models are often used in survival analysis to model multivariate time-to-event data. In infectious disease epidemiology, frailty models have been proposed to model heterogeneity in the acquisition of infection and to accommodate association in the occurrence of multiple types of infection. Although traditional frailty models rely on the assumption of lifelong immunity after recovery, refinements have been made to account for reinfections with the same pathogen. Recently, Abrams and Hens quantified the effect of misspecifying the underlying infection process on the basic and effective reproduction number in the context of bivariate current status data on parvovirus B19 and varicella zoster virus. Furthermore, Farrington, Unkel and their co-workers introduced and applied time varying shared frailty models to paired bivariate serological data. In this paper, we consider an extension of the proposed frailty methodology by Abrams and Hens to account for age-dependence in individual heterogeneity through the use of age-dependent shared and correlated gamma frailty models. The methodology is illustrated by using two data applications.

摘要

脆弱性模型常用于生存分析,以对多变量事件发生时间数据进行建模。在传染病流行病学中,有人提出使用脆弱性模型来模拟感染获得过程中的异质性,并考虑多种类型感染发生时的关联性。尽管传统的脆弱性模型依赖于康复后终身免疫的假设,但已有改进方法来考虑再次感染相同病原体的情况。最近,艾布拉姆斯和亨斯在关于细小病毒B19和水痘带状疱疹病毒的双变量现状数据背景下,量化了错误指定潜在感染过程对基本繁殖数和有效繁殖数的影响。此外,法林顿、昂克尔及其同事引入并将时变共享脆弱性模型应用于配对的双变量血清学数据。在本文中,我们考虑对艾布拉姆斯和亨斯提出的脆弱性方法进行扩展,通过使用年龄依赖性共享和相关伽马脆弱性模型来考虑个体异质性中的年龄依赖性。通过两个数据应用实例对该方法进行了说明。

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