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Beijesa lokālie telpiskās asociācijas indikatori (Beijesa LISA)×Bayesian Spatial Autocorrelation×
NozareTelpiskā analīzeTelpiskā analīze
SaimeRegression modelRegression model
Izcelsmes gads2000s–2010s1991
AutorsExtension of Anselin (1995) LISA framework within Bayesian hierarchical modeling traditions (Banerjee, Carlin, Gelfand)Besag, York & Mollie
TipsBayesian local spatial statisticBayesian hierarchical spatial model
PirmavotsAnselin, L. (1995). Local indicators of spatial association—LISA. Geographical Analysis, 27(2), 93–115. DOI ↗Besag, J., York, J., & Mollie, A. (1991). Bayesian image restoration, with two applications in spatial statistics. Annals of the Institute of Statistical Mathematics, 43(1), 1–20. DOI ↗
Citi nosaukumiBayesian LISA, Bayesian local spatial autocorrelation, Bayesian local Moran, B-LISABayesian spatial dependence, Bayesian LISA, Bayesian spatial clustering, BSA
Saistītās66
KopsavilkumsBayesian Local Indicators of Spatial Association extend the classical LISA framework by embedding local spatial association statistics within a Bayesian hierarchical model. Rather than relying on asymptotic permutation-based significance tests, this approach places prior distributions on spatial parameters and derives posterior probabilities that a location is part of a genuine spatial cluster, accounting for uncertainty and borrowing strength across nearby units.Bayesian Spatial Autocorrelation embeds spatial dependence directly into a Bayesian hierarchical model. A Conditional Autoregressive (CAR) prior encodes the expectation that neighboring areas are more similar than distant ones, and posterior inference is obtained via MCMC. This approach is especially valuable in disease mapping, ecology, and regional science, where small-area estimates need borrowing strength across neighbors.
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ScholarGateSalīdzināt metodes: Bayesian Local Indicators of Spatial Association · Bayesian Spatial Autocorrelation. Izgūts 2026-06-19 no https://scholargate.app/lv/compare