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A generalized focused information criterion for GMM

Abstract:
This paper proposes a criterion for simultaneous generalized method of moments model and moment selection: the generalized focused information criterion (GFIC). Rather than attempting to identify the “true” specification, the GFIC chooses from a set of potentially misspecified moment conditions and parameter restrictions to minimize the mean squared error (MSE) of a user-specified target parameter. The intent of the GFIC is to formalize a situation common in applied practice. An applied researcher begins with a set of fairly weak “baseline” assumptions, assumed to be correct, and must decide whether to impose any of a number of stronger, more controversial “suspect” assumptions that yield parameter restrictions, additional moment conditions, or both. Provided that the baseline assumptions identify the model, we show how to construct an asymptotically unbiased estimator of the asymptotic MSE to select over these suspect assumptions: the GFIC. We go on to provide results for postselection inference and model averaging that can be applied both to the GFIC and various alternative selection criteria. To illustrate how our criterion can be used in practice, we specialize the GFIC to the problem of selecting over exogeneity assumptions and lag lengths in a dynamic panel model, and show that it performs well in simulations. We conclude by applying the GFIC to a dynamic panel data model for the price elasticity of cigarette demand.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1002/jae.2614

Authors

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Institution:
University of Oxford
Division:
SSD
Department:
Economics
Role:
Author
ORCID:
0000-0002-5924-7740


Publisher:
Wiley
Journal:
Journal of Applied Econometrics More from this journal
Volume:
33
Issue:
3
Pages:
378-397
Publication date:
2018-01-11
Acceptance date:
2017-09-22
DOI:
EISSN:
1099-1255
ISSN:
0883-7252


Language:
English
Pubs id:
1037905
Local pid:
pubs:1037905
Deposit date:
2020-02-22
ARK identifier:

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