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Пространственно-временная оценка плотности ядра (ST-KDE)×Анализ горячих точек (Getis-Ord Gi*)×
ОбластьПространственный анализПространственный анализ
СемействоRegression modelRegression model
Год появления2010 (space-time extension); 1956 (KDE origin)1992
Автор методаNakaya & Yano (space-time formulation); KDE foundation by Rosenblatt and ParzenArthur Getis and J. Keith Ord
ТипNon-parametric density estimationLocal spatial statistic
Основополагающий источникNakaya, 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 ↗
Другие названияST-KDE, spatiotemporal kernel density estimation, space-time KDE, 3D kernel density estimationGetis-Ord Gi* statistic, spatial hot spot detection, cluster and outlier analysis, HSA
Связанные55
СводкаSpace-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.Hot Spot Analysis uses the Getis-Ord Gi* local spatial statistic to identify geographic locations where high or low attribute values cluster together to a degree that is statistically significant. Each feature is evaluated in relation to its neighbours, producing a z-score that flags genuine spatial hot spots and cold spots against a background of random variation.
ScholarGateНабор данных
  1. v1
  2. 2 Источники
  3. PUBLISHED
  1. v1
  2. 2 Источники
  3. PUBLISHED

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ScholarGateСравнение методов: Space-Time Kernel Density Estimation · Hot Spot Analysis. Получено 2026-06-17 из https://scholargate.app/ru/compare