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Erschienen in: Lifetime Data Analysis 3/2022

28.06.2022

Model selection among Dimension-Reduced generalized Cox models

verfasst von: Ming-Yueh Huang, Kwun Chuen Gary Chan

Erschienen in: Lifetime Data Analysis | Ausgabe 3/2022

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Abstract

Conventional semiparametric hazards regression models rely on the specification of particular model formulations, such as proportional-hazards feature and single-index structures. Instead of checking these modeling assumptions one-by-one, we proposed a class of dimension-reduced generalized Cox models, and then a consistent model selection procedure among this class to select covariates with proportional-hazards feature and a proper model formulation for non-proportional-hazards covariates. In this class, the non-proportional-hazards covariates are treated in a nonparametric manner, and a partial sufficient dimension reduction is introduced to reduce the curse of dimensionality. A semiparametric efficient estimation is proposed to estimate these models. Based on the proposed estimation, we further constructed a cross-validation type criterion to consistently select the correct model among this class. Most importantly, this class of hazards regression models contains the fully nonparametric hazards regression model as the most saturated submodel, and hence no further model diagnosis is required. Overall speaking, this model selection approach is more effective than performing a sequence of conventional model checking. The proposed method is illustrated by simulation studies and a data example.

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Metadaten
Titel
Model selection among Dimension-Reduced generalized Cox models
verfasst von
Ming-Yueh Huang
Kwun Chuen Gary Chan
Publikationsdatum
28.06.2022
Verlag
Springer US
Erschienen in
Lifetime Data Analysis / Ausgabe 3/2022
Print ISSN: 1380-7870
Elektronische ISSN: 1572-9249
DOI
https://doi.org/10.1007/s10985-022-09565-5

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