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Bekijk de geselecteerde methoden naast elkaar; rijen die verschillen zijn gemarkeerd.

Ruimtetijdskriger×Ruimtelijke Autocorrelatie in Ruimte-Tijd×
VakgebiedRuimtelijke analyseRuimtelijke analyse
FamilieRegression modelRegression model
Jaar van ontstaan19991981–1992
GrondleggerCressie & Huang; Kyriakidis & JournelCliff & Ord; extended by Anselin and others
TypeGeostatistical interpolationSpatial autocorrelation statistic
Oorspronkelijke bronCressie, N., & Huang, H.-C. (1999). Classes of nonseparable, spatio-temporal stationary covariance functions. Journal of the American Statistical Association, 94(448), 1330-1340. DOI ↗Clifford, P., Richardson, S., & Hemon, D. (1989). Assessing the significance of the correlation between two spatial processes. Biometrics, 45(1), 123–134. DOI ↗
Aliassenspatiotemporal kriging, ST-kriging, space-time geostatistical interpolation, kriging in space-timeSTSA, spatiotemporal autocorrelation, space-time Moran's I, temporal spatial dependence
Verwant45
SamenvattingSpace-Time Kriging is a geostatistical interpolation method that predicts an unknown variable at any location and time by borrowing strength from nearby observations in both space and time simultaneously. It models the joint spatial-temporal covariance structure through a space-time variogram, then uses optimal linear weights to produce predictions with quantified uncertainty.Space-Time Spatial Autocorrelation extends classic spatial autocorrelation measures — most notably Moran's I — to data that vary across both geographic units and time periods. It detects whether nearby locations that are also temporally close tend to share similar attribute values, revealing clusters, trends, or anomalies that purely spatial or purely temporal analyses would miss.
ScholarGateGegevensset
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  2. 2 Bronnen
  3. PUBLISHED
  1. v1
  2. 2 Bronnen
  3. PUBLISHED

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ScholarGateMethoden vergelijken: Space-Time Kriging · Space-Time Spatial Autocorrelation. Geraadpleegd op 2026-06-18 via https://scholargate.app/nl/compare