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Байесов ко-кръгинг×Обикновено кърѝгиране×
ОбластПространствен анализПространствен анализ
СемействоRegression modelRegression model
Година на възникване1990s–2000s1963
СъздателGelfand, Banerjee & colleagues; building on Matheron's cokriging frameworkGeorges Matheron (formalising D.G. Krige's empirical work)
ТипBayesian spatial interpolationGeostatistical interpolation
Основополагащ източникDiggle, P. J., & Ribeiro, P. J. (2007). Model-Based Geostatistics. Springer. ISBN: 978-0387329079Matheron, G. (1963). Principles of geostatistics. Economic Geology, 58(8), 1246-1266. DOI ↗
Други названияBayesian cokriging, Bayesian co-regionalization, BCK, Bayesian multivariate krigingOK, kriging interpolation, geostatistical interpolation, BLUE spatial predictor
Свързани54
РезюмеBayesian Co-Kriging is a multivariate geostatistical method that uses auxiliary spatially correlated variables to improve predictions of a primary variable of interest. By placing Bayesian priors on cross-covariance parameters, it propagates all uncertainty — including parameter uncertainty — into the prediction intervals, yielding fully probabilistic maps with calibrated uncertainty bounds.Ordinary Kriging (OK) is the standard geostatistical method for interpolating a continuous spatial variable at unsampled locations. It derives optimal, unbiased weights from the spatial covariance structure of the data, making it the Best Linear Unbiased Predictor (BLUP) under stationarity assumptions. Unlike simpler distance-based methods, it also provides a prediction uncertainty (kriging variance) at every interpolated point.
ScholarGateНабор от данни
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  2. 2 Източници
  3. PUBLISHED
  1. v1
  2. 2 Източници
  3. PUBLISHED

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ScholarGateСравнение на методи: Bayesian Co-Kriging · Ordinary Kriging. Извлечено на 2026-06-18 от https://scholargate.app/bg/compare