A data-driven approach for estimating the change-points and impact of major events on disease risk

被引:2
|
作者
Carroll, R. [1 ]
Lawson, A. B. [2 ]
Zhao, S. [1 ]
机构
[1] NIEHS, Biostat & Computat Biol Branch, 111 TW Alexander Dr, Res Triangle Pk, NC 27709 USA
[2] Med Univ South Carolina, Dept Publ Hlth Sci, Charleston, SC 29425 USA
关键词
Accelerated failure time; Survival; Breast cancer; Change-point estimation; Event impact; BREAST-CANCER; MORTALITY; SURVIVAL;
D O I
10.1016/j.sste.2018.08.005
中图分类号
R1 [预防医学、卫生学];
学科分类号
1004 ; 120402 ;
摘要
Considering the impact of events on disease risk is important. Here, a Bayesian spatio-temporal accelerated failure time model furnished an ideal situation for modeling events that could impact survival experience via spatial and temporal frailty estimates. Through a hierarchical structure, this model allowed the data to detect the change-point(s) in addition to generating the event-related estimates. Both a real data case study and a simulation study were employed for testing these methods. The results suggested that meaningful and accurate change-points could be detected. Further, accurate event-related estimates for individuals in relation to those change-points could be obtained. By allowing the data to drive the change-point choices, the models were better fitting and the inference was more accurate. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页码:111 / 118
页数:8
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