Bayesian Analysis of Failure Time Data Using P-Splines

Bayesian Analysis of Failure Time Data Using P-Splines

Author
Matthias Kaeding (auth.)
Publisher
Springer Spektrum
Language
English
Edition
1
Year
2015
Page
110
ISBN
978-3-658-08392-2,978-3-658-08393-9
File Type
pdf
File Size
2.9 MiB

Matthias Kaeding discusses Bayesian methods for analyzing discrete and continuous failure times where the effect of time and/or covariates is modeled via P-splines and additional basic function expansions, allowing the replacement of linear effects by more general functions. The MCMC methodology for these models is presented in a unified framework and applied on data sets. Among others, existing algorithms for the grouped Cox and the piecewise exponential model under interval censoring are combined with a data augmentation step for the applications. The author shows that the resulting Gibbs sampler works well for the grouped Cox and is merely adequate for the piecewise exponential model.

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