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Rum-tid kerne-densitetsestimering (ST-KDE)×Space-Time Getis-Ord Gi* Hot Spot Statistik×
FagområdeRumlig analyseRumlig analyse
FamilieRegression modelRegression model
Oprindelsesår2010 (space-time extension); 1956 (KDE origin)1992 (Gi*); space-time extension ~2000s–2010s
OphavspersonNakaya & Yano (space-time formulation); KDE foundation by Rosenblatt and ParzenGetis & Ord (seminal); space-time extension developed in GIS literature and ArcGIS Emerging Hot Spot Analysis
TypeNon-parametric density estimationLocal spatial statistic (space-time extension)
Oprindelig kildeNakaya, T., & Yano, K. (2010). Visualising crime clusters in a space-time cube: An exploratory data-analysis approach using space-time kernel density estimation and scan statistics. Transactions in GIS, 14(3), 223-239. DOI ↗Getis, A., & Ord, J. K. (1992). The analysis of spatial association by use of distance statistics. Geographical Analysis, 24(3), 189-206. DOI ↗
AliasserST-KDE, spatiotemporal kernel density estimation, space-time KDE, 3D kernel density estimationST-Gi*, space-time hot spot analysis, emerging hot spot analysis, space-time local autocorrelation statistic
Relaterede54
ResuméSpace-Time Kernel Density Estimation extends classical KDE into three dimensions — two spatial and one temporal — to reveal how the intensity of point events (crimes, accidents, disease cases) varies continuously across both geographic space and time. It produces a smooth probabilistic surface that highlights where and when events concentrate most densely.The Space-Time Getis-Ord Gi* statistic extends the classic Gi* local hot spot measure into three dimensions — two spatial and one temporal — revealing not only where concentrations of high or low values cluster, but how those clusters evolve, intensify, or diminish over time. It is widely used in crime analysis, epidemiology, ecology, and urban studies.
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ScholarGateSammenlign metoder: Space-Time Kernel Density Estimation · Space-Time Getis-Ord Gi*. Hentet 2026-06-18 fra https://scholargate.app/da/compare