Bivariate joint models for survival and change of cognitive function

Author:

Pan Shengning1ORCID,van den Hout Ardo1

Affiliation:

1. Department of Statistical Science, University College, London, UK

Abstract

Changes in cognitive function over time are of interest in ageing research. A joint model is constructed to investigate. Generally, cognitive function is measured through more than one test, and the test scores are integers. The aim is to investigate two test scores and use an extension of a bivariate binomial distribution to define a new joint model. This bivariate distribution model the correlation between the two test scores. To deal with attrition due to death, the Weibull hazard model and the Gompertz hazard model are used. A shared random-effects model is constructed, and the random effects are assumed to follow a bivariate normal distribution. It is shown how to incorporate random effects that link the bivariate longitudinal model and the survival model. The joint model is applied to the English Longitudinal Study of Ageing data.

Publisher

SAGE Publications

Subject

Health Information Management,Statistics and Probability,Epidemiology

Reference45 articles.

1. Banks J, Breeze E, Lessof C et al. Retirement, health and relationships of the older population in england: The 2004 english longitudinal study of ageing (wave 2), 2006.

2. Joint modelling of time-to-event and multivariate longitudinal outcomes: recent developments and issues

3. Joint models for discrete longitudinal outcomes in aging research

4. Random-Effects Models for Longitudinal Data

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