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An Adversarial Approach to Identification

Irene Botosaru, Isaac Loh, Chris Muris

arXiv 6 Nov 2024 · Econometrics

arXiv:2411.04239 · PDF · DOI · OpenAlex · Extracted main text

Abstract

We introduce a new framework for characterizing identified sets of structural and counterfactual parameters in econometric models. By reformulating the identification problem as a set membership question, we leverage the separating hyperplane theorem in the space of observed probability measures to characterize the identified set through the zeros of a discrepancy function with an adversarial game interpretation. The set can be a singleton, resulting in point identification. A feature of many econometric models, with or without distributional assumptions on the error terms, is that the probability measure of observed variables can be expressed as a linear transformation of the probability measure of latent variables. This structure provides a unifying framework and facilitates computation and inference via linear programming. We demonstrate the versatility of our approach by applying it to nonlinear panel models with fixed effects, with parametric and nonparametric error distributions, and across various exogeneity restrictions, including strict and sequential.

Citation extraction

78
references
144
in-text mentions
78
distinct cited
3
self-citations
17,808
main-text words

appendix boundary found by appendix_titled_section at “Supplementary Material” · 55% of the source is main text. Read the extracted text to check this.

Most heavily cited references

The works this paper leans on most, across its whole bibliography — not restricted to papers in our corpus. Ranked by composite intensity, which combines how often a work is mentioned, how many sections mention it, and how much of that falls in the main text rather than the appendix.

ReferenceIntensityMentionsSectionsMain text
1Chernozhukov, Victor, Ivan Fernández-Val, Jinyong Hahn, and Whitney… (2013) Average and Quantile Effects in Nonseparable Panel Models1.000103100%
2Honoré, Bo E. and Elie Tamer (2006) Bounds on Parameters in Panel Dynamic Discrete Choice Models1.00064100%
3Chesher, Andrew, Adam M. Rosen, and Yuanqi Zhang (2024) Robust Analysis of Short Panels, Working paper, arXiv:2401.066110.92843100%
4Bonhomme, Stéphane (2012) Functional Differencing0.81142100%
5Manski, Charles F (1987) Semiparametric Analysis of Random Effects Linear Models From Binary Panel Data0.81142100%
6Schennach, Susanne M (2014) Entropic Latent Variable Integration Via Simulation0.73732100%
7Torgovitsky, Alexander (2019) Partial Identification by Extending Subdistributions0.73732100%
8Winkler, Gerhard (1988) Extreme Points of Moment Sets0.6444250%
9Botosaru, Irene and Chris Muris (2024) Identification of Time-Varying Counterfactual Parameters in Nonlinear Panel Models self0.64422100%
10Aristodemou, Eleni (2021) Semiparametric Identification in Panel Data Discrete Response Models0.64422100%

Showing the top 10 of 78 scored citations.

Cited by, within the corpus

arXiv econ.EM papers that cite this one, ranked by how heavily they lean on it.

Citing paperIntensityMentionsSections
1Moment Restrictions for Nonlinear Panel Data Models with Feedback0.40511
2Inference in partially identified moment models via regularized optimal transport0.40511
3Approximate Operator Inversion for Average Effects in Nonlinear Panel Models0.40511