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Co-kriging: Interpolasi Geostatistik Multivariat×Autokorelasi Ruang×
BidangAnalisis ReruangAnalisis Reruang
KeluargaRegression modelRegression model
Tahun asal1965-19781950
PengasasMatheron, G.; extended by Journel & HuijbregtsP. A. P. Moran (global measure, 1950); Roy Geary (Geary's C, 1954); Luc Anselin (LISA, 1995)
JenisGeostatistical interpolationSpatial statistic / exploratory spatial data analysis
Sumber perintisJournel, A. G., & Huijbregts, C. J. (1978). Mining Geostatistics. Academic Press, London. ISBN: 978-0123910561Moran, P. A. P. (1950). Notes on continuous stochastic phenomena. Biometrika, 37(1/2), 17–23. DOI ↗
Aliascokriging, co-regionalization kriging, multivariate kriging, CKspatial dependence, geographic autocorrelation, spatial clustering measure, SA
Berkaitan55
RingkasanCo-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.Spatial autocorrelation quantifies the degree to which a variable's values at nearby locations resemble each other more (positive autocorrelation) or less (negative autocorrelation) than expected by chance. Global indices such as Moran's I summarise the pattern across the entire study area, while local variants reveal clusters and outliers at the level of individual observations.
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ScholarGateBandingkan kaedah: Co-kriging · Spatial Autocorrelation. Dicapai 2026-06-17 daripada https://scholargate.app/ms/compare