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Emparejamiento Espacial por Puntuación de Propensión×Coarsened Exact Matching (CEM)×
CampoInferencia causalInferencia causal
FamiliaRegression modelRegression model
Año de origen2000s2011-2012
Autor originalExtension of Rosenbaum & Rubin (1983) PSM to spatial settings; spatial adaptation developed in applied econometrics and epidemiology literature from the 2000s onwardIacus, King, & Porro
TipoQuasi-experimental matching estimatorMatching / causal inference
Fuente seminalRosenbaum, P. R., & Rubin, D. B. (1983). The central role of the propensity score in observational studies for causal effects. Biometrika, 70(1), 41-55. DOI ↗Iacus, S. M., King, G., & Porro, G. (2012). Causal Inference without Balance Checking: Coarsened Exact Matching. Political Analysis, 20(1), 1-24. DOI ↗
AliasSpatial PSM, Geospatial PSM, Spatially-adjusted propensity score matching, Geographic propensity score matchingCEM, coarsened matching, monotonic imbalance bounding matching
Relacionados66
ResumenSpatial Propensity Score Matching (Spatial PSM) extends the classic propensity score matching framework to settings where units are embedded in geographic space and treatment assignment or outcomes may be spatially correlated. By incorporating spatial covariates and adjacency structure into the propensity model and matching procedure, it produces causal estimates that account for geographic confounding and spillover effects.Coarsened Exact Matching is a preprocessing method that achieves covariate balance by temporarily coarsening continuous variables into bins, exactly matching treated and control units within those bins, and then discarding all unmatched units. Introduced by Iacus, King, and Porro (2011, 2012), it bounds imbalance on each covariate independently, yielding a matched sample on which any estimator can be applied without relying on a propensity score model.
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ScholarGateComparar métodos: Spatial Propensity Score Matching · Coarsened Exact Matching. Recuperado el 2026-06-19 de https://scholargate.app/es/compare