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Title:

Choosing the link function and accounting for link uncertainty in generalized linear models using Bayes factors

Document type:
Zeitschriftenaufsatz
Author(s):
Czado, C. and Raftery, A.E.
Abstract:
One important component of model selection using generalized linear models (GLM) is the choice of a link function. We propose using approximate Bayes factors to assess the improvement in fit over a GLM with canonical link when a parametric link family is used. The approximate Bayes factors are calculated using the Laplace approximations given in [32], together with a reference set of prior distributions. This methodology can be used to differentiate between different parametric link families,...     »
Keywords:
Bayes factors; link function; GLM, model selection; reference prior.
Journal title:
Statistical Papers
Year:
2006
Journal volume:
47
Journal issue:
3
Pages contribution:
419-442
Reviewed:
ja
Language:
en
WWW:
http://link.springer.com/article/10.1007%2Fs00362-006-0296-9
Status:
Verlagsversion / published
Semester:
SS 06
Format:
Text
 BibTeX