المساق
arXiv 2015-10-29 DOI 10.1214/15-AOS1365 0 مشاهدة

Estimating the smoothness of a Gaussian random field from irregularly spaced data via higher-order quadratic variations

Loh, Wei-Liem

الأصل · EN

This article introduces a method for estimating the smoothness of a stationary, isotropic Gaussian random field from irregularly spaced data. This involves novel constructions of higher-order quadratic variations and the establishment of the corresponding fixed-domain asymptotic theory. In particular, we consider: (i) higher-order quadratic variations using nonequispaced line transect data, (ii) second-order quadratic variations from a sample of Gaussian random field observations taken along a smooth curve in R², (iii) second-order quadratic variations based on deformed lattice data on R². Smoothness estimators are proposed that are strongly consistent under mild assumptions. Simulations indicate that these estimators perform well for moderate sample sizes.

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