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Penyeimbangan Entropi Spatial×Anggaran Keboleh-kukuhan Ganda Angkasa×
BidangInferens KausalInferens Kausal
KeluargaRegression modelRegression model
Tahun asal2010s2010s–2020s
PengasasExtension of Hainmueller (2012) entropy balancing to spatial settings; spatial adaptations developed in geographic epidemiology and spatial econometrics literatureExtension of Robins, Rotnitzky & Zhao (1994) doubly robust framework to spatial settings; developed in spatial epidemiology and econometrics literature
JenisQuasi-experimental reweightingSemiparametric causal estimator
Sumber perintisHainmueller, 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 ↗Papadogeorgou, G., Mealli, F., & Zigler, C. M. (2019). Causal inference with interfering units for cluster and population level treatment allocation programs. Biometrics, 75(3), 778-787. DOI ↗
Aliasspatial EB, geographically-weighted entropy balancing, spatial reweightingSpatial DR, Spatial AIPW, Spatial augmented IPW, Doubly robust spatial causal estimation
Berkaitan65
RingkasanSpatial 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 doubly robust estimation is a semiparametric causal inference method that combines propensity score weighting with outcome regression modeling — providing protection against misspecification of either component — while explicitly accounting for spatial autocorrelation among units. It extends the classical augmented inverse probability weighting (AIPW) estimator to settings where treatment assignment and outcomes are geographically clustered or spatially dependent.
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ScholarGateBandingkan kaedah: Spatial Entropy Balancing · Spatial Doubly Robust Estimation. Dicapai 2026-06-15 daripada https://scholargate.app/ms/compare