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Local polynomial regression with correlated errors in random design and unknown correlation structure

Tijdschriftbijdrage - Tijdschriftartikel

© 2018 Oxford University Press. All rights reserved. Automated or data-driven bandwidth selection methods tend to break down in the presence of correlated errors. While this problem has previously been studied in the fixed design setting for kernel regression, the results were applicable only when there is knowledge about the correlation structure. This article generalizes these results to the random design setting and addresses the problem in situations where no prior knowledge about the correlation structure is available.We establish the asymptotic optimality of our proposed bandwidth selection criterion based on kernels K satisfying K(0) = 0.
Tijdschrift: Biometrika
ISSN: 0006-3444
Issue: 3
Volume: 105
Pagina's: 681 - 690
Jaar van publicatie:2018
BOF-keylabel:ja
IOF-keylabel:ja
BOF-publication weight:1
CSS-citation score:1
Auteurs:International
Authors from:Higher Education
Toegankelijkheid:Open