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Average and Quantile Effects in Nonseparable Panel Models

Victor Chernozhukov, Ivan Fernandez-Val, Jinyong Hahn, Whitney Newey

arXiv 13 Apr 2009 · Statistics — Methodology · 235 citations (OpenAlex)

arXiv:0904.1990 · PDF · DOI · OpenAlex · Extracted main text

Abstract

Nonseparable panel models are important in a variety of economic settings, including discrete choice. This paper gives identification and estimation results for nonseparable models under time homogeneity conditions that are like "time is randomly assigned" or "time is an instrument." Partial identification results for average and quantile effects are given for discrete regressors, under static or dynamic conditions, in fully nonparametric and in semiparametric models, with time effects. It is shown that the usual, linear, fixed-effects estimator is not a consistent estimator of the identified average effect, and a consistent estimator is given. A simple estimator of identified quantile treatment effects is given, providing a solution to the important problem of estimating quantile treatment effects from panel data. Bounds for overall effects in static and dynamic models are given. The dynamic bounds provide a partial identification solution to the important problem of estimating the effect of state dependence in the presence of unobserved heterogeneity. The impact of $T$, the number of time periods, is shown by deriving shrinkage rates for the identified set as $T$ grows. We also consider semiparametric, discrete-choice models and find that semiparametric panel bounds can be much tighter than nonparametric bounds. Computationally-convenient methods for semiparametric models are presented. We propose a novel inference method that applies in panel data and other settings and show that it produces uniformly valid confidence regions in large samples. We give empirical illustrations.

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Cited by, within the corpus

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

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1An Adversarial Approach to Identification1.000103
2Bounds on Average Effects in Discrete Choice Panel Data Models0.899117
3Panel Data Quantile Regression for Treatment Effect Models0.81142
4Low-Rank Approximations of Nonseparable Panel Models0.81142
5Dynamic demand for differentiated products with fixed-effects unobserved heterogeneity0.81142
6Identification of time-varying counterfactual parameters in nonlinear panel models0.794145
7Selection and parallel trends0.73753
8Estimating Treatment Effects in Mover Designs0.73732
90.5 in Robust Forecasting0.73732
10Functional Differencing in Networks0.73732