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Условна геостатистичка симулација×Univerzalno krigingovanje (krigingovanje sa trendom)×
OblastProstorna analizaProstorna analiza
PorodicaRegression modelRegression model
Godina nastanka19971969
TvoracPierre Goovaerts; geostatistics traditionGeorges Matheron
TipStochastic spatial simulationGeostatistical interpolation with spatial trend
Temeljni izvorGoovaerts, P. (1997). Geostatistics for Natural Resources Evaluation. Oxford University Press. ISBN: 978-0-19-511538-3Matheron, G. (1963). Principles of geostatistics. Economic Geology, 58(8), 1246–1266. DOI ↗
Drugi naziviSequential Gaussian Simulation, SGS, Stochastic Simulation, Koşullu Simülasyonkriging with a trend, kriging with drift, trend kriging, evrensel kriging
Srodne23
SažetakConditional Geostatistical Simulation — most commonly implemented as Sequential Gaussian Simulation (SGS) — generates multiple stochastic realizations of a spatial random field that are each consistent with observed sample data and with a fitted variogram model. Unlike kriging, which produces a single smoothed estimate, SGS reproduces the full spatial variability of the phenomenon. It is widely used by geoscientists, mining engineers, petroleum engineers, and environmental scientists who need to propagate spatial uncertainty through downstream models.Universal kriging generalizes ordinary kriging to data whose mean varies systematically across space — a spatial trend or 'drift'. It models the mean as a function of the coordinates (or covariates) and krigs the residuals, so it can interpolate variables that drift in a preferred direction, such as temperature falling with latitude or a pollutant gradient, while still returning prediction variances.
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ScholarGateUporedite metode: Conditional Geostatistical Simulation · Universal Kriging. Preuzeto 2026-06-15 sa https://scholargate.app/sr/compare