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A Multiresolution Gaussian Process Model for the Analysis of Large Spatial Datasets
by
Sain, Stephan
, Bandyopadhyay, Soutir
, Lindgren, Finn
, Nychka, Douglas
, Hammerling, Dorit
in
Fixed rank kriging
/ Gaussian Processes
/ Kriging
/ Markov analysis
/ Mathematical functions
/ Mathematical models
/ Normal distribution
/ Numerical analysis
/ Sparse Cholesky decomposition
/ Spatial estimator
/ Statistical inference
/ Studies
2015
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A Multiresolution Gaussian Process Model for the Analysis of Large Spatial Datasets
by
Sain, Stephan
, Bandyopadhyay, Soutir
, Lindgren, Finn
, Nychka, Douglas
, Hammerling, Dorit
in
Fixed rank kriging
/ Gaussian Processes
/ Kriging
/ Markov analysis
/ Mathematical functions
/ Mathematical models
/ Normal distribution
/ Numerical analysis
/ Sparse Cholesky decomposition
/ Spatial estimator
/ Statistical inference
/ Studies
2015
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Do you wish to request the book?
A Multiresolution Gaussian Process Model for the Analysis of Large Spatial Datasets
by
Sain, Stephan
, Bandyopadhyay, Soutir
, Lindgren, Finn
, Nychka, Douglas
, Hammerling, Dorit
in
Fixed rank kriging
/ Gaussian Processes
/ Kriging
/ Markov analysis
/ Mathematical functions
/ Mathematical models
/ Normal distribution
/ Numerical analysis
/ Sparse Cholesky decomposition
/ Spatial estimator
/ Statistical inference
/ Studies
2015
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A Multiresolution Gaussian Process Model for the Analysis of Large Spatial Datasets
Journal Article
A Multiresolution Gaussian Process Model for the Analysis of Large Spatial Datasets
2015
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Overview
We develop a multiresolution model to predict two-dimensional spatial fields based on irregularly spaced observations. The radial basis functions at each level of resolution are constructed using a Wendland compactly supported correlation function with the nodes arranged on a rectangular grid. The grid at each finer level increases by a factor of two and the basis functions are scaled to have a constant overlap. The coefficients associated with the basis functions at each level of resolution are distributed according to a Gaussian Markov random field (GMRF) and take advantage of the fact that the basis is organized as a lattice. Several numerical examples and analytical results establish that this scheme gives a good approximation to standard covariance functions such as the Matérn and also has flexibility to fit more complicated shapes. The other important feature of this model is that it can be applied to statistical inference for large spatial datasets because key matrices in the computations are sparse. The computational efficiency applies to both the evaluation of the likelihood and spatial predictions.
Publisher
Taylor & Francis,American Statistical Association, Institute of Mathematical Statistics, and Interface Foundation of North America,Taylor & Francis Ltd
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