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空間的エントロピー・バランシング×空間的逆確率重み付け(Spatial IPW)×
分野因果推論因果推論
系統Regression modelRegression model
提唱年2010s2010s
提唱者Extension of Hainmueller (2012) entropy balancing to spatial settings; spatial adaptations developed in geographic epidemiology and spatial econometrics literatureExtension of Rosenbaum & Rubin (1983) IPW to spatial settings; formal treatment by Papadogeorgou et al. (2019)
種類Quasi-experimental reweightingQuasi-experimental / causal inference
原典Hainmueller, J. (2012). Entropy Balancing for Causal Effects: A Multivariate Reweighting Method to Produce Balanced Samples in Observational Studies. Political Analysis, 20(1), 25-46. DOI ↗Hirano, K., Imbens, G. W., & Ridder, G. (2003). Efficient Estimation of Average Treatment Effects Using the Estimated Propensity Score. Econometrica, 71(4), 1161-1189. DOI ↗
別名spatial EB, geographically-weighted entropy balancing, spatial reweightingSpatial IPW, Geographic IPW, Spatially-weighted IPW, SIPW
関連66
概要Spatial entropy balancing extends standard entropy balancing to observational settings where units are embedded in geographic space, incorporating spatial structure into the reweighting process so that balance is achieved while respecting spatial proximity, clustering, or spillover dependencies between units.Spatial Inverse Probability Weighting extends the classical IPW estimator to settings where units are geo-referenced and spatial location is a confounding dimension. By incorporating geographic coordinates or spatial proximity into the propensity score model, it reweights the observed sample so that treatment and control groups are balanced not only on measured covariates but also on spatial structure, enabling credible causal inference from spatially indexed observational data.
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  1. v1
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  3. PUBLISHED

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ScholarGate手法を比較: Spatial Entropy Balancing · Spatial Inverse Probability Weighting. 2026-06-18に以下より取得 https://scholargate.app/ja/compare