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A bivariate autoregressive linear mixed effects model for the analysis of longitudinal data

Authors :
Yasuo Ohashi
Ikuko Funatogawa
Takashi Funatogawa
Source :
Statistics in Medicine. 27:6367-6378
Publication Year :
2008
Publisher :
Wiley, 2008.

Abstract

In clinical studies, dependent bivariate continuous responses may approach equilibrium over time. We propose an autoregressive linear mixed effects model for bivariate longitudinal data in which the current responses are regressed on the previous responses of both variables, fixed effects, and random effects. The equilibria are modeled using fixed and random effects. This model is a bivariate extension of the model for univariate longitudinal data given by Funatogawa et al. (Statist. Med. 2007; 26:2113-2130). As an illustration of the approach we analyze parathyroid hormone and serum calcium measurements in the treatment of secondary hyperparathyroidism in chronic hemodialysis patients.

Details

ISSN :
02776715
Volume :
27
Database :
OpenAIRE
Journal :
Statistics in Medicine
Accession number :
edsair.doi...........d82f593ea0eeab053ec38b76e5fe6fbd
Full Text :
https://doi.org/10.1002/sim.3456