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Global Spatial Durbin Model (SDM)×Modelo de Erro Espacial Global (SEM)×
ÁreaAnálise espacialAnálise espacial
FamíliaRegression modelRegression model
Ano de origem20091988
Autor originalDurbin (1960); adapted to spatial context by LeSage & Pace (2009)Luc Anselin
TipoSpatial regression modelSpatial regression model
Fonte seminalLeSage, J. P., & Pace, R. K. (2009). Introduction to Spatial Econometrics. CRC Press / Taylor & Francis. ISBN: 978-1420064247Anselin, L. (1988). Spatial Econometrics: Methods and Models. Kluwer Academic Publishers. ISBN: 978-9024737322
Outros nomesSDM, Spatial Durbin Model, global SDM, spatially lagged X model with spatial lagSEM, spatial error model, spatial error regression, global SEM
Relacionados55
ResumoThe Global Spatial Durbin Model extends the spatial lag model by including not only a spatially lagged dependent variable but also spatially lagged independent variables (WX). A single set of global coefficients applies uniformly across all locations, making it suitable for estimating average spillover effects when spatial dependence is pervasive throughout the study region.The Global Spatial Error Model (SEM) is a spatial regression technique that accounts for spatially autocorrelated error terms using a single, globally constant spatial parameter. It separates genuine predictor effects from spatial nuisance dependence in the residuals, yielding unbiased and efficient coefficient estimates when spatial error correlation is present across all observations.
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ScholarGateComparar métodos: Global Spatial Durbin Model · Global Spatial Error Model. Recuperado em 2026-06-17 de https://scholargate.app/pt/compare