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Regressió Espacial Bayesiana×Model d'Error Espacial (SEM)×
CampAnàlisi espacialAnàlisi espacial
FamíliaRegression modelRegression model
Any d'origen1990s–2000s1988
Autor originalBanerjee, Carlin & Gelfand (foundational treatment); building on Besag (1974) for lattice priorsAnselin
TipusBayesian hierarchical regressionSpatial regression (spatially autocorrelated errors)
Font seminalBanerjee, S., Carlin, B. P., & Gelfand, A. E. (2015). Hierarchical Modeling and Analysis for Spatial Data (2nd ed.). CRC Press. ISBN: 978-1439819173Anselin, L. (1988). Spatial Econometrics: Methods and Models. Kluwer Academic. DOI ↗
ÀliesBayesian hierarchical spatial model, BSR, Bayesian geostatistical regression, Bayesian spatial linear modelSEM, spatial error regression, spatial autoregressive error model, Uzamsal Hata Modeli (SEM / Spatial Error)
Relacionats35
ResumBayesian Spatial Regression embeds a spatially structured random effect into a regression framework and estimates all parameters — including spatial range and variance — through posterior inference rather than point estimation. It handles spatial autocorrelation, quantifies full predictive uncertainty, and accommodates small or irregular spatial datasets via hierarchical priors.The Spatial Error Model, developed within Anselin's spatial econometrics framework (1988), is a regression model that assumes spatial dependence enters through the error term: the disturbances of neighbouring units are correlated. It is used when unobserved shared factors make the errors of nearby observations move together, and it is estimated by maximum likelihood or GMM rather than ordinary least squares.
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ScholarGateCompara mètodes: Bayesian Spatial Regression · Spatial Error Model. Recuperat el 2026-06-15 de https://scholargate.app/ca/compare