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Autokorelasi Spasial Robust×Autokorelasi Spasial×
BidangAnalisis SpasialAnalisis Spasial
KeluargaRegression modelRegression model
Tahun asal1981–19951950
PencetusCliff & Ord; extended by Anselin and colleaguesP. A. P. Moran (global measure, 1950); Roy Geary (Geary's C, 1954); Luc Anselin (LISA, 1995)
TipeSpatial dependence test (robust variant)Spatial statistic / exploratory spatial data analysis
Sumber perintisAnselin, L., & Florax, R. J. G. M. (1995). Small sample properties of tests for spatial dependence in regression models: some further results. In Anselin, L. & Florax, R. J. G. M. (Eds.), New Directions in Spatial Econometrics. Springer, Berlin. link ↗Moran, P. A. P. (1950). Notes on continuous stochastic phenomena. Biometrika, 37(1/2), 17–23. DOI ↗
Aliasrobust Moran's I, robust spatial dependence test, outlier-resistant spatial autocorrelation, RSAspatial dependence, geographic autocorrelation, spatial clustering measure, SA
Terkait55
RingkasanRobust spatial autocorrelation methods measure the degree to which nearby geographic units share similar values, while explicitly controlling for the distorting influence of spatial outliers and extreme observations. They extend classical statistics such as Moran's I by down-weighting or trimming observations that would otherwise inflate or deflate the autocorrelation signal.Spatial autocorrelation quantifies the degree to which a variable's values at nearby locations resemble each other more (positive autocorrelation) or less (negative autocorrelation) than expected by chance. Global indices such as Moran's I summarise the pattern across the entire study area, while local variants reveal clusters and outliers at the level of individual observations.
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ScholarGateBandingkan metode: Robust Spatial Autocorrelation · Spatial Autocorrelation. Diakses 2026-06-17 dari https://scholargate.app/id/compare