Fitting growth curve models in the Bayesian framework

被引:22
|
作者
Oravecz, Zita [1 ]
Muth, Chelsea [2 ]
机构
[1] Penn State Univ, 216 Hlth & Human Dev Bldg, State Coll, PA 16801 USA
[2] Penn State Univ, 008 Hlth & Human Dev Bldg, State Coll, PA USA
关键词
Bayesian modeling; Growth curve modeling;
D O I
10.3758/s13423-017-1281-0
中图分类号
B841 [心理学研究方法];
学科分类号
040201 ;
摘要
Growth curve modeling is a popular methodological tool due to its flexibility in simultaneously analyzing both within-person effects (e.g., assessing change over time for one person) and between-person effects (e.g., comparing differences in the change trajectories across people). This paper is a practical exposure to fitting growth curve models in the hierarchical Bayesian framework. First the mathematical formulation of growth curve models is provided. Then we give step-by-step guidelines on how to fit these models in the hierarchical Bayesian framework with corresponding computer scripts (JAGS and R). To illustrate the Bayesian GCM approach, we analyze a data set from a longitudinal study of marital relationship quality. We provide our computer code and example data set so that the reader can have hands-on experience fitting the growth curve model.
引用
收藏
页码:235 / 255
页数:21
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