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INFERENCE FOR LOW-RANK MODELS

delete2023-06-01
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AI
V
Victor Chernozhukov *
C
Christian Hansen
廖原 封面图
廖原 (Yuan Liao)
Y
Yinchu Zhu
DOI:10.1214/23-AOS2293delete
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摘要

摘要

En 中文
This paper studies inference in linear models with a high-dimensional parameter matrix that can be well approximated by a spiked low-rank matrix. A spiked low-rank matrix has rank that grows slowly compared to its dimensions and nonzero singular values that diverge to infinity. We show that this framework covers a broad class of models of latent variables, which can accommodate matrix completion problems, factor models, varying coefficient models and heterogeneous treatment effects. For inference, we apply a procedure that relies on an initial nuclear-norm penalized estimation step followed by two ordinary least squares regressions. We consider the framework of estimating incoherent eigenvectors and use a rotation argument to argue that the eigenspace estimation is asymptotically unbiased. Using this framework, we show that our procedure provides asymptotically normal inference and achieves the semiparametric efficiency bound. We illustrate our framework by providing low-level conditions for its application in a treatment effects context where treatment assignment might be strongly dependent.
Keyword:
Key words and phrases. Singular value thresholding
sample splitting
incoherent eigenvectors.

期刊

Annals of Statistics 封面图
Annals of Statistics
IF:
3.7
论文数:
2.8K
被引数:
2.9W

机构

R
rutgers university system
学者数:
4.1W
论文数: 3.7W
被引数: 53
U
university of chicago
学者数:
4.5W
论文数: 3.7W
被引数: 80
R
rutgers university new brunswick
学者数:
2.3W
论文数: 1.9W
被引数: 32
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