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Random effects regression mixtures for analyzing infant habituation

Producción científica: Articlerevisión exhaustiva

10 Citas (Scopus)

Resumen

Random effects regression mixture models are a way to classify longitudinal data (or trajectories) having possibly varying lengths. The mixture structure of the traditional random effects regression mixture model arises through the distribution of the random regression coefficients, which is assumed to be a mixture of multivariate normals. An extension of this standard model is presented that accounts for various levels of heterogeneity among the trajectories, depending on their assumed error structure. A standard likelihood ratio test is presented for testing this error structure assumption. Full details of an expectation-conditional maximization algorithm for maximum likelihood estimation are also presented. This model is used to analyze data from an infant habituation experiment, where it is desirable to assess whether infants comprise different populations in terms of their habituation time.

Idioma originalEnglish
Páginas (desde-hasta)1421-1441
Número de páginas21
PublicaciónJournal of Applied Statistics
Volumen42
N.º7
DOI
EstadoPublished - jul 3 2015

Nota bibliográfica

Publisher Copyright:
© 2015, © 2015 Taylor & Francis.

Financiación

The authors are grateful to two anonymous referees for helpful comments during the preparation of this article. We also wish to thank Hoben Thomas from the Department of Psychology, Pennsylvania State University, Arnold Lohaus from the Department of Psychology, University of Marburg, and the German Research Foundation (DFG) for providing the infant data set. This work was supported by National Science Foundation Award [SES-0518772].

FinanciadoresNúmero del financiador
National Science Foundation (NSF)SES-0518772
The Pennsylvania State University
Philipps-Universität Marburg
Deutsche Forschungsgemeinschaft

    ASJC Scopus subject areas

    • Statistics and Probability
    • Statistics, Probability and Uncertainty

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