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  • 标题:The optimal starting model to search for the accurate growth trajectory in latent growth models
  • 本地全文:下载
  • 作者:Minjung Kim ; Hsien-Yuan Hsu ; Oi-man Kwok
  • 期刊名称:Frontiers in Psychology
  • 电子版ISSN:1664-1078
  • 出版年度:2018
  • 卷号:9
  • 页码:1-13
  • DOI:10.3389/fpsyg.2018.00349
  • 出版社:Frontiers Media
  • 摘要:This simulation study aims to propose an optimal starting model to search for the accurate growth trajectory in Latent Growth Models (LGM). We examine the performance of four different starting models in terms of the complexity of the mean and within-subject variance-covariance (V-CV) structures when there are time-invariant covariates embedded in the population models. Results showed that the model search starting with the fully saturated model (i.e., the most complex mean and within-subject V-CV model) recovers best for the true growth trajectory in simulations. Specifically, the fully saturated starting model with using ΔBIC and ΔAIC performed best (over 95%) and recommended for researchers. An illustration of the proposed method is given using the empirical secondary dataset. Implications of the findings and limitations are discussed.
  • 关键词:Latent growth models; Specification search; Starting model; latent curve models; model building; growth curve; Model selection
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