A clustering algorithm for multivariate longitudinal data

被引:7
|
作者
Bruckers, Liesbeth [1 ]
Molenberghs, Geert [1 ,2 ]
Drinkenburg, Pim [3 ]
Geys, Helena [1 ,3 ]
机构
[1] Univ Hasselt, I BioStat, Diepenbeek, Belgium
[2] Katholieke Univ Leuven, I BioStat, Leuven, Belgium
[3] Janssen Res & Dev, Div Janssen Pharmaceut NV, Beerse, Belgium
关键词
Cluster analysis; EEG data; joint models; multivariate longitudinal data; ANALYZING DEVELOPMENTAL TRAJECTORIES; CRIMINAL CAREERS; LIKELIHOOD; NUMBER; MODELS; COMPONENTS; SELECTION;
D O I
10.1080/10543406.2015.1052476
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Latent growth modeling approaches, such as growth mixture models, are used to identify meaningful groups or classes of individuals in a larger heterogeneous population. But when applied to multivariate repeated measures computational problems are likely, due to the high dimension of the joint distribution of the random effects in these mixed-effects models. This article proposes a cluster algorithm for multivariate repeated data, using pseudo-likelihood and ideas based on k-means clustering, to reveal homogenous subgroups. The algorithm was demonstrated on an electro-encephalogram dataset set quantifying the effect of psychoactive compounds on the brain activity in rats.
引用
收藏
页码:725 / 741
页数:17
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