Semiparametric estimation of generalized transformation panel data models with nonstationary error

Author:

Wang Xi1,Chen Songnian2

Affiliation:

1. Department of Economics, Shanghai Lixin University of Accounting and Finance, No.995, Road Shangchuan,Shanghai, China, +86 180-2109-7852

2. Department of Economics, Hong Kong University of Science and Technology, Road Clear Water Bay, Kowloon, Hong Kong

Abstract

Summary Early studies of the generalized transformation panel data model resorted to the identical marginal distribution of the error term over time. This stationarity condition is restrictive for many applications, especially as the number of time periods increases. This paper considers nonstationary censored generalized transformation panel data models where the idiosyncratic error has an unknown nonseparable form and admits a flexible relationship between the observable and the unobservable. We propose an estimation method, and establish the consistency and asymptotic normality for the proposed estimator. Simulation results illustrate the good performance of our estimator in a finite sample. We apply the proposed method to bilateral trade issues of the U.S.A. and foreign countries.

Funder

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

Subject

Economics and Econometrics

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