Literature DB >> 20161464

Efficient Semiparametric Marginal Estimation for the Partially Linear Additive Model for Longitudinal/Clustered Data.

Raymond Carroll1, Arnab Maity, Enno Mammen, Kyusang Yu.   

Abstract

We consider the efficient estimation of a regression parameter in a partially linear additive nonparametric regression model from repeated measures data when the covariates are multivariate. To date, while there is some literature in the scalar covariate case, the problem has not been addressed in the multivariate additive model case. Ours represents a first contribution in this direction. As part of this work, we first describe the behavior of nonparametric estimators for additive models with repeated measures when the underlying model is not additive. These results are critical when one considers variants of the basic additive model. We apply them to the partially linear additive repeated-measures model, deriving an explicit consistent estimator of the parametric component; if the errors are in addition Gaussian, the estimator is semiparametric efficient. We also apply our basic methods to a unique testing problem that arises in genetic epidemiology; in combination with a projection argument we develop an efficient and easily computed testing scheme. Simulations and an empirical example from nutritional epidemiology illustrate our methods.

Entities:  

Year:  2009        PMID: 20161464      PMCID: PMC2791377          DOI: 10.1007/s12561-009-9000-7

Source DB:  PubMed          Journal:  Stat Biosci        ISSN: 1867-1764


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3.  Testing in semiparametric models with interaction, with applications to gene-environment interactions.

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Journal:  J R Stat Soc Series B Stat Methodol       Date:  2009-01-01       Impact factor: 4.488

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1.  Marginal longitudinal semiparametric regression via penalized splines.

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2.  Estimation of a partially linear additive model for data from an outcome-dependent sampling design with a continuous outcome.

Authors:  Ziwen Tan; Guoyou Qin; Haibo Zhou
Journal:  Biostatistics       Date:  2016-03-22       Impact factor: 5.899

3.  Variable selection in strong hierarchical semiparametric models for longitudinal data.

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  3 in total

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