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Пространствен лаг модел (SAR / Spatial Autoregressive)×Кригинг пространствена интерполация×
ОбластПространствен анализПространствен анализ
СемействоRegression modelRegression model
Година на възникване19881963
СъздателAnselin (textbook formalisation); LeSage & PaceGeorges Matheron (formalised geostatistics)
ТипSpatial autoregressive regressionGeostatistical spatial interpolation
Основополагащ източникAnselin, L. (1988). Spatial Econometrics: Methods and Models. Kluwer Academic. DOI ↗Matheron, G. (1963). Principles of Geostatistics. Economic Geology, 58(8), 1246–1266. DOI ↗
Други названияSAR model, spatial autoregressive model, spatial lag, Uzamsal Gecikme Modeli (SAR / Spatial Lag)geostatistical interpolation, Gaussian process regression (geostatistics), ordinary kriging, Kriging (Mekânsal Enterpolasyon)
Свързани55
РезюмеThe Spatial Lag Model is an autoregressive regression that assumes spatial dependence in the dependent variable itself: the outcome values of neighbouring units enter the model as an explanatory term (ρWy). It was formalised in Anselin's Spatial Econometrics (1988) and developed further by LeSage and Pace (2009), and it decomposes spillover effects into direct, indirect, and total impacts.Kriging is a geostatistical method that predicts the value of a continuous variable at unmeasured locations from nearby measurements, using the spatial correlation structure captured by a variogram. Formalised by Georges Matheron in 1963, it is the best linear unbiased predictor (BLUP) for spatial data and comes in Ordinary, Universal, and Co-Kriging forms.
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: Spatial Lag Model · Kriging. Извлечено на 2026-06-17 от https://scholargate.app/bg/compare