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Estimation and inference in high-dimensional panel data models with interactive fixed effects

delete2025-11-01
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PRE
AI
M
Maximilian Rücker *
M
Michael Vogt
O
Oliver B. Linton
C
Christopher Walsh
DOI:10.3982/QE2308delete
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摘要

摘要

En 中文
We develop new econometric methods for estimation and inference in high-dimensional panel data models with interactive fixed effects. Our approach can be regarded as a nontrivial extension of the very popular common correlated effects (CCE) approach. Roughly speaking, we proceed as follows: We first construct a projection device to eliminate the unobserved factors from the model by applying a dimensionality reduction transform to the matrix of cross-sectionally averaged covariates. The unknown parameters are then estimated by applying lasso techniques to the projected model. For inference purposes, we derive a desparsified version of our lasso-type estimator. While the original CCE approach is restricted to the low-dimensional case where the number of regressors is small and fixed, our methods can deal with both low- and high-dimensional situations where the number of regressors is large and may even exceed the overall sample size. We derive theory for our estimation and inference methods both in the large-T-case, where the time-series length T tends to infinity, and in the small-T-case, where T is a fixed natural number. Specifically, we derive the convergence rate of our estimator and show that its desparsified version is asymptotically normal under suitable regularity conditions. The theoretical analysis of the paper is complemented by a simulation study and an empirical application to characteristic based asset pricing.
Keyword:
Panel data
interactive fixed effects
CCE estimator
high-dimensional model
lasso
desparsified lasso
C13
C23
C55

期刊

Q
Quantitative Economics
IF:
2.2
论文数:
24
被引数:
0

机构

U
ulm university
学者数:
1.9W
论文数: 1.4W
被引数: 57
N
newcastle university - uk
学者数:
2.9W
论文数: 2.6W
被引数: 39
U
university of cambridge
学者数:
8.3K
论文数: 3.9K
被引数: 3
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