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基于广义估计方程的模糊聚类增长曲线模型:在儿童反社会行为中的应用。

Fuzzy Clusterwise Growth Curve Models via Generalized Estimating Equations: An Application to the Antisocial Behavior of Children.

机构信息

a McGill University , Montreal , QC , Canada.

b Pennsylvania State University , Pennsylvania.

出版信息

Multivariate Behav Res. 2007 Apr-Jun;42(2):233-59. doi: 10.1080/00273170701360332.

Abstract

The growth curve model has been a useful tool for the analysis of repeated measures data. However, it is designed for an aggregate-sample analysis based on the assumption that the entire sample of respondents are from a single homogenous population. Thus, this method may not be suitable when heterogeneous subgroups exist in the population with qualitatively distinct patterns of trajectories. In this paper, the growth curve model is generalized to a fuzzy clustering framework, which explicitly accounts for such group-level heterogeneity in trajectories of change over time. Moreover, the proposed method estimates parameters based on generalized estimating equations thereby relaxing the assumption of correct specification of the population covariance structure among repeated responses. The performance of the proposed method in recovering parameters and the number of clusters is investigated based on two Monte Carlo analyses involving synthetic data. In addition, the empirical usefulness of the proposed method is illustrated by an application concerning the antisocial behavior of a sample of children.

摘要

增长曲线模型一直是分析重复测量数据的有用工具。然而,它是基于假设整个样本受访者都来自单一同质群体的聚合样本分析而设计的。因此,当人口中存在具有明显轨迹模式的异质亚组时,这种方法可能并不适用。在本文中,增长曲线模型被推广到模糊聚类框架中,该框架明确考虑了随时间变化的轨迹中的这种组级异质性。此外,所提出的方法基于广义估计方程估计参数,从而放宽了对重复响应之间群体协方差结构正确指定的假设。基于两项涉及合成数据的蒙特卡罗分析,研究了所提出的方法在恢复参数和聚类数量方面的性能。此外,通过应用于儿童样本的反社会行为,说明了所提出的方法的实际用途。

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