Asymptotic Theory for Local Time Density Estimation and Nonparametric Cointegration Regression

27 Pages Posted: 10 Dec 2006

See all articles by Qiying Wang

Qiying Wang

University of Sydney

Peter C. B. Phillips

University of Auckland Business School; Yale University - Cowles Foundation; Singapore Management University - School of Economics

Date Written: December 2006

Abstract

We provide a new asymptotic theory for local time density estimation for a general class of functionals of integrated time series. This result provides a convenient basis for developing an asymptotic theory for nonparametric cointegrating regression and autoregression. Our treatment directly involves the density function of the processes under consideration and avoids Fourier integral representations and Markov process theory which have been used in earlier research on this type of problem. The approach provides results of wide applicability to important practical cases and involves rather simple derivations that should make the limit theory more accessible and useable in econometric applications. Our main result is applied to offer an alternative development of the asymptotic theory for non-parametric estimation of a non-linear cointegrating regression involving non-stationary time series. In place of the framework of null recurrent Markov chains as developed in recent work of Karlsen, Myklebust and Tjostheim (2007), the direct local time density argument used here more closely resembles conventional nonparametric arguments, making the conditions simpler and more easily verified.

Keywords: Brownian Local time, Cointegration, Integrated process, Local time density estimation, Nonlinear functionals, Nonparametric regression, Unit root

JEL Classification: C14, C22

Suggested Citation

Wang, Qiying and Phillips, Peter C. B., Asymptotic Theory for Local Time Density Estimation and Nonparametric Cointegration Regression (December 2006). Cowles Foundation Discussion Paper No. 1594, Available at SSRN: https://ssrn.com/abstract=950496

Qiying Wang

University of Sydney ( email )

University of Sydney
Sydney, NSW 2006
Australia

Peter C. B. Phillips (Contact Author)

University of Auckland Business School ( email )

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Auckland, 1010
New Zealand
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Yale University - Cowles Foundation ( email )

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United States
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Singapore Management University - School of Economics

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