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Penalized Likelihood Inference with Survey Data

16 April 2023
J. Jasiak
Purevdorj Tuvaandorj
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Abstract

This paper extends three Lasso inferential methods, Debiased Lasso, C(α)C(\alpha)C(α) and Selective Inference to a survey environment. We establish the asymptotic validity of the inference procedures in generalized linear models with survey weights and/or heteroskedasticity. Moreover, we generalize the methods to inference on nonlinear parameter functions e.g. the average marginal effect in survey logit models. We illustrate the effectiveness of the approach in simulated data and Canadian Internet Use Survey 2020 data.

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