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Co-kriging: Interpolació Geostadística Multivariant×Regressió Ponderada Geogràficament (GWR)×
CampAnàlisi espacialAnàlisi espacial
FamíliaRegression modelRegression model
Any d'origen1965-19782002
Autor originalMatheron, G.; extended by Journel & HuijbregtsFotheringham, Brunsdon & Charlton
TipusGeostatistical interpolationLocal spatial regression
Font seminalJournel, A. G., & Huijbregts, C. J. (1978). Mining Geostatistics. Academic Press, London. ISBN: 978-0123910561Fotheringham, A. S., Brunsdon, C., & Charlton, M. (2002). Geographically Weighted Regression: The Analysis of Spatially Varying Relationships. Wiley. ISBN: 978-0471496168
Àliescokriging, co-regionalization kriging, multivariate kriging, CKGWR, local regression, spatially varying coefficient regression, Coğrafi Ağırlıklı Regresyon (GWR)
Relacionats55
ResumCo-kriging is a geostatistical interpolation technique that predicts the spatial distribution of a primary variable by leveraging its spatial cross-correlation with one or more secondary (co-) variables. It extends ordinary kriging to multivariate settings, yielding more accurate predictions when the secondary variable is more densely sampled or spatially correlated with the primary variable of interest.Geographically Weighted Regression is a local regression method, introduced by Fotheringham, Brunsdon and Charlton (2002), that allows the regression coefficients to vary across space. Instead of one global equation, it fits a separate set of coefficients at every location, capturing spatial heterogeneity in the relationships.
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ScholarGateCompara mètodes: Co-kriging · Geographically Weighted Regression. Recuperat el 2026-06-18 de https://scholargate.app/ca/compare