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Estimació de la Densitat del Nucli Espai-Temps (ST-KDE)×Autocorrelació espacial espaciotemporal×
CampAnàlisi espacialAnàlisi espacial
FamíliaRegression modelRegression model
Any d'origen2010 (space-time extension); 1956 (KDE origin)1981–1992
Autor originalNakaya & Yano (space-time formulation); KDE foundation by Rosenblatt and ParzenCliff & Ord; extended by Anselin and others
TipusNon-parametric density estimationSpatial autocorrelation statistic
Font seminalNakaya, 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 ↗Clifford, P., Richardson, S., & Hemon, D. (1989). Assessing the significance of the correlation between two spatial processes. Biometrics, 45(1), 123–134. DOI ↗
ÀliesST-KDE, spatiotemporal kernel density estimation, space-time KDE, 3D kernel density estimationSTSA, spatiotemporal autocorrelation, space-time Moran's I, temporal spatial dependence
Relacionats55
ResumSpace-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.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.
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ScholarGateCompara mètodes: Space-Time Kernel Density Estimation · Space-Time Spatial Autocorrelation. Recuperat el 2026-06-15 de https://scholargate.app/ca/compare