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The international journal of biostatistics, 2021-03, Vol.18 (1), p.83-108
2021
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Details

Autor(en) / Beteiligte
Titel
Bayesian approaches to variable selection: a comparative study from practical perspectives
Ist Teil von
  • The international journal of biostatistics, 2021-03, Vol.18 (1), p.83-108
Ort / Verlag
Germany: De Gruyter
Erscheinungsjahr
2021
Quelle
MEDLINE
Beschreibungen/Notizen
  • In many clinical studies, researchers are interested in parsimonious models that simultaneously achieve consistent variable selection and optimal prediction. The resulting parsimonious models will facilitate meaningful biological interpretation and scientific findings. Variable selection via Bayesian inference has been receiving significant advancement in recent years. Despite its increasing popularity, there is limited practical guidance for implementing these Bayesian approaches and evaluating their comparative performance in clinical datasets. In this paper, we review several commonly used Bayesian approaches to variable selection, with emphasis on application and implementation through R software. These approaches can be roughly categorized into four classes: namely the Bayesian model selection, spike-and-slab priors, shrinkage priors, and the hybrid of both. To evaluate their variable selection performance under various scenarios, we compare these four classes of approaches using real and simulated datasets. These results provide practical guidance to researchers who are interested in applying Bayesian approaches for the purpose of variable selection.
Sprache
Englisch
Identifikatoren
ISSN: 1557-4679, 2194-573X
eISSN: 1557-4679
DOI: 10.1515/ijb-2020-0130
Titel-ID: cdi_proquest_miscellaneous_2505365262

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