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Asymptotic theory for clustered samples

Cited 25 time in Web of Science Cited 25 time in Scopus
Authors

Hansen, Bruce E.; Lee, Seojeong

Issue Date
2019-06
Publisher
Elsevier BV
Citation
Journal of Econometrics, Vol.210 No.2, pp.268-290
Abstract
We provide a complete asymptotic distribution theory for clustered data with a large number of independent groups, generalizing the classic laws of large numbers, uniform laws, central limit theory, and clustered covariance matrix estimation. Our theory allows for clustered observations with heterogeneous and unbounded cluster sizes. Our conditions cleanly nest the classical results for i.n.i.d. observations, in the sense that our conditions specialize to the classical conditions under independent sampling. We use this theory to develop a full asymptotic distribution theory for estimation based on linear least-squares, 2SLS, nonlinear MLE, and nonlinear GMM.
ISSN
0304-4076
URI
https://hdl.handle.net/10371/187231
DOI
https://doi.org/10.1016/j.jeconom.2019.02.001
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