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dc.contributor.authorLu, Zudi
dc.contributor.authorLundervold, A.
dc.contributor.authorTjostheim, D.
dc.contributor.authorYAO, Qiwei
dc.date.accessioned2017-01-30T12:19:27Z
dc.date.available2017-01-30T12:19:27Z
dc.date.created2009-03-05T00:58:23Z
dc.date.issued2007
dc.identifier.citationLu, Zudi and Lundervold, Arvid and Tjostheim, Dag and Yao, Qiwei . 2007. Exploring spatial nonlinearity using additive approximation. Bernoulli 13: pp. 447-472.
dc.identifier.urihttp://hdl.handle.net/20.500.11937/20467
dc.description.abstract

We propose to approximate the conditional expectation of a spatial random variable given its nearest neighbour observations by an additive function. The setting is meaningful in practice and requires no unilateral ordering. It is capable of catching nonlinear features in spatial data and exploring local dependence structures. Our approach is different from both Markov field methods and disjunctive kriging. The asymptotic properties of the additive estimators have been established for α-mixing spatial processes by extending the theory of the backfitting procedure to the spatial case. This facilitates the confidence intervals for the component functions, although the asymptotic biases have to be estimated via (wild) bootstrap. Simulation results are reported. Applications to real data illustrate that the improvement in describing the data over the auto-normal scheme is significant when nonlinearity or non-Gaussianity is pronounced.

dc.publisherInternational Statistical Institute/Bernoulli Society
dc.relation.urihttp://isi.cbs.nl/bernoulli/index.htm
dc.titleExploring spatial nonlinearity using additive approximation
dc.typeJournal Article
dcterms.source.volume13
dcterms.source.startPage447
dcterms.source.endPage472
dcterms.source.issn13507265
dcterms.source.titleBernoulli
curtin.accessStatusFulltext not available
curtin.facultySchool of Science and Computing
curtin.facultyDepartment of Mathematics and Statistics
curtin.facultyFaculty of Science and Engineering


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