Variable selection using stepdown procedures in high-dimensional linear models

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Dane publikacji

  • DOI: 10.4064/am2286-6-2016

  • Tom 43

  • Zeszyt 2

  • Czasopismo: Applicationes Mathematicae

  • Strony: 157-172

  • Data publikacji online: 24.08.2016

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Abstrakt

We study the variable selection problem in high-dimensional linear models with Gaussian and non-Gaussian errors. Based on Ridge estimation, as in Bühlmann (2013) we are considering the problem of variable selection as the problem of multiple hypotheses testing. Under some technical assumptions we prove that stepdown procedures are consistent for variable selection in a high-dimensional linear model.