Status | 已发表Published |
Title | Modelling survival events with longitudinal covariates measured with error |
Creator | |
Date Issued | 2013 |
Source Publication | Communications in Statistics - Theory and Methods
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ISSN | 0361-0926/1532-415X |
Volume | 42Issue:21Pages:3819-3837 |
Abstract | In survival analysis, time-dependent covariates are usually present as longitudinal data collected periodically and measured with error. The longitudinal data can be assumed to follow a linear mixed effect model and Cox regression models may be used for modelling of survival events. The hazard rate of survival times depends on the underlying time-dependent covariate measured with error, which may be described by random effects. Most existing methods proposed for such models assume a parametric distribution assumption on the random effects and specify a normally distributed error term for the linear mixed effect model. These assumptions may not be always valid in practice. In this article, we propose a new likelihood method for Cox regression models with error-contaminated time-dependent covariates. The proposed method does not require any parametric distribution assumption on random effects and random errors. Asymptotic properties for parameter estimators are provided. Simulation results show that under certain situations the proposed methods are more efficient than the existing methods. © 2013 Copyright Taylor and Francis Group, LLC. |
Keyword | Linear mixed model Longitudinal measurements Partial likelihood Proportional hazard model Random effects |
DOI | 10.1080/03610926.2011.624243 |
URL | View source |
Indexed By | SCIE |
Language | 英语English |
WOS Research Area | Mathematics |
WOS Subject | Statistics & Probability |
WOS ID | WOS:000325197900002 |
Citation statistics |
Cited Times [WOS]:0
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Document Type | Journal article |
Identifier | http://repository.uic.edu.cn/handle/39GCC9TT/5062 |
Collection | Research outside affiliated institution |
Affiliation | 1.School of CEM, University of Brighton, Watts Building, Brighton BN2 4GJ, United Kingdom 2.School of Mathematics, University of Manchester, Manchester, United Kingdom 3.School of Mathematics, Yunnan Normal University, China |
Recommended Citation GB/T 7714 | Dai, Hongsheng,Pan, Jianxin,Bao, Yanchun. Modelling survival events with longitudinal covariates measured with error[J]. Communications in Statistics - Theory and Methods, 2013, 42(21): 3819-3837. |
APA | Dai, Hongsheng, Pan, Jianxin, & Bao, Yanchun. (2013). Modelling survival events with longitudinal covariates measured with error. Communications in Statistics - Theory and Methods, 42(21), 3819-3837. |
MLA | Dai, Hongsheng,et al."Modelling survival events with longitudinal covariates measured with error". Communications in Statistics - Theory and Methods 42.21(2013): 3819-3837. |
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