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Nonparametric Regression with Serially Correlated Errors

Author

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  • Jan G. de Gooijer

    (University of Amsterdam)

  • Ali Gannoun

    (Irène Larramendy, Université de Montpellier II)

Abstract

Motivated by the problem of setting prediction intervals in time seriesanalysis, this investigation is concerned with recovering a regression functionm(X_t) on the basis of noisy observations taking at random design pointsX_t.It is presumed that the corresponding observations are corrupted by additiveserially correlated noise and that the noise is, in fact, induced by a generallinear process. The main result of this study is that, under some reasonableconditions, the nonparametric kernel estimator of m(x)(/i) is asymptoticallynormally distributed. Using this result, we construct confidence bands form(x).Simulations will be conducted to assess the performance of these bands infinite-sample situations

Suggested Citation

  • Jan G. de Gooijer & Ali Gannoun, 1999. "Nonparametric Regression with Serially Correlated Errors," Tinbergen Institute Discussion Papers 99-063/4, Tinbergen Institute.
  • Handle: RePEc:tin:wpaper:19990063
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