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베이지안 공간 오차 모형×Moran's I×
분야공간분석공간분석
계열Regression modelRegression model
기원 연도1988 (classical SEM); 2009 (Bayesian formulation)1950
창시자LeSage & Pace (Bayesian treatment); Anselin (classical SEM)Patrick A. P. Moran
유형Bayesian spatial regressionSpatial autocorrelation statistic
원전LeSage, J. P., & Pace, R. K. (2009). Introduction to Spatial Econometrics. CRC Press / Taylor & Francis. ISBN: 978-1420064247Moran, P. A. P. (1950). Notes on continuous stochastic phenomena. Biometrika, 37(1/2), 17–23. DOI ↗
별칭Bayesian SEM, Bayesian spatial-error regression, BSEM spatial econometrics, Bayesian spatially correlated error modelMoran's I statistic, global Moran's I, spatial autocorrelation index, Moran index
관련66
요약The Bayesian Spatial Error Model (Bayesian SEM) estimates a regression in which spatially correlated disturbances are explicitly modelled through a spatial weights matrix, while all parameters — regression coefficients, spatial error autocorrelation, and error variance — receive full posterior distributions via Bayesian inference rather than point estimates.Moran's I is the standard global statistic for detecting spatial autocorrelation: whether nearby locations tend to share similar values. The index ranges from approximately −1 (perfect dispersion) through 0 (spatial randomness) to +1 (perfect clustering), allowing researchers to test whether a geographic pattern differs from complete spatial randomness with a single, interpretable number.
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