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Statistical Inference for High-Dimensional Generalized Linear Models With Binary Outcomes

delete2021-12-09
delete17
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OA
AI
T
Tommaso Cai
Z
Zijian Guo *
R
Rong Ma
DOI:10.1080/01621459.2021.1990769delete
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Abstract

Abstract

En 中文
This article develops a unified statistical inference framework for high-dimensional binary generalized linear models (GLMs) with general link functions. Both unknown and known design distribution settings are considered. A two-step weighted bias-correction method is proposed for constructing confidence intervals (CIs) and simultaneous hypothesis tests for individual components of the regression vector. Minimax lower bound for the expected length is established and the proposed CIs are shown to be rate-optimal up to a logarithmic factor. The numerical performance of the proposed procedure is demonstrated through simulation studies and an analysis of a single cell RNA-seq dataset, which yields interesting biological insights that integrate well into the current literature on the cellular immune response mechanisms as characterized by single-cell transcriptomics. The theoretical analysis provides important insights on the adaptivity of optimal CIs with respect to the sparsity of the regression vector. New lower bound techniques are introduced and they can be of independent interest to solve other inference problems in high-dimensional binary GLMs.
Keywords:
Adaptivity
Confidence interval
Hypothesis testing
Link functions
Optimality
Weighting

Journal

J
Journal of the American Statistical Association
IF:
3
Papers:
5.1K
Citations:
4.8W

Organization

R
rutgers university new brunswick
Scholars:
2.3W
Papers: 1.9W
Citations: 32
U
university of pennsylvania
Scholars:
9.2W
Papers: 7.8W
Citations: 153
R
rutgers university system
Scholars:
4.1W
Papers: 3.7W
Citations: 53
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