Literature DB >> 12210623

Penalized likelihood approach to estimate a smooth mean curve on longitudinal data.

Hélène Jacqmin-Gadda1, Pierre Joly, Daniel Commenges, Christine Binquet, Geneviève Chêne.   

Abstract

This paper aims to propose a penalized likelihood approach to estimate a smooth mean curve for the evolution with time of a Gaussian variable taking into account the correlation structure of longitudinal data. The model is an extension of the mixed effects linear model including an unspecified function of time f(t). The estimator (circumflex)f(t) is defined as the solution of the maximization of the penalized likelihood and is approximated on a basis of cubic M-spline with a reduced number of knots. We present modifications of four criteria (cross-validation, generalized cross-validation, T of Rice, Akaike's criterion) to estimate the smoothing parameter when data are correlated; these four criteria gave very similar results in the simulation study. The simulation study showed also the superiority of the Bayesian confidence bands of the mean curve over the frequentist ones. We develop empirical Bayes estimates of subject-specific deviations. This approach was applied to study the progression of CD4+ lymphocyte counts in a cohort of HIV patients treated with protease inhibitors. Copyright 2002 John Wiley & Sons, Ltd.

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Year:  2002        PMID: 12210623     DOI: 10.1002/sim.1225

Source DB:  PubMed          Journal:  Stat Med        ISSN: 0277-6715            Impact factor:   2.373


  3 in total

1.  Continuous Time Nonstationary Correlation Models for Sparse Longitudinal Data.

Authors:  Vinay K Cheruvu; Jeffrey M Albert
Journal:  Model Assist Stat Appl       Date:  2019-07-18

2.  Regularized finite mixture models for probability trajectories.

Authors:  Kerby Shedden; Robert A Zucker
Journal:  Psychometrika       Date:  2008-12       Impact factor: 2.500

3.  Direct regression models for longitudinal rates of change.

Authors:  Matthew Bryan; Patrick J Heagerty
Journal:  Stat Med       Date:  2014-02-04       Impact factor: 2.373

  3 in total

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