Decoupling Shrinkage and Selection in Bayesian Linear Models: A Posterior Summary Perspective

Selecting a subset of variables for linear models remains an active area of research. This article reviews many of the recent contributions to the Bayesian model selection and shrinkage prior literature. A posterior variable selection summary is proposed, which distills a full posterior distribution...

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Veröffentlicht in:Journal of the American Statistical Association 2015-03, Vol.110 (509), p.435-448
Hauptverfasser: Hahn, P. Richard, Carvalho, Carlos M
Format: Artikel
Sprache:eng
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Zusammenfassung:Selecting a subset of variables for linear models remains an active area of research. This article reviews many of the recent contributions to the Bayesian model selection and shrinkage prior literature. A posterior variable selection summary is proposed, which distills a full posterior distribution over regression coefficients into a sequence of sparse linear predictors.
ISSN:1537-274X
0162-1459
1537-274X
DOI:10.1080/01621459.2014.993077