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Telpiskā noslieces rādītāja svēršana×Telpiskās regresijas diskontinuitātes dizains (Spatial RDD)×
NozareCēloņsakarību secināšanaCēloņsakarību secināšana
SaimeRegression modelRegression model
Izcelsmes gads2000s–2010s2010s
AutorsExtended from Hirano, Imbens & Ridder (2003) IPTW with spatial adaptations by Keele, Titiunik and others in geographically structured causal designsPopularized by Dell (2010); formalized for geographic boundaries by Keele & Titiunik (2015)
TipsQuasi-experimental / causal inferenceQuasi-experimental causal inference
PirmavotsKeele, L., & Titiunik, R. (2015). Geographic Boundaries as Regression Discontinuities. Political Analysis, 23(1), 127-155. DOI ↗Dell, M. (2010). The Persistent Effects of Peru's Mining Mita. Econometrica, 78(6), 1863-1903. DOI ↗
Citi nosaukumispatial PSW, geographically weighted propensity score weighting, spatial IPTW, spatially adjusted inverse probability weightingSpatial RDD, Geographic RDD, Border RD Design, Geographic Discontinuity Design
Saistītās64
KopsavilkumsSpatial propensity score weighting extends inverse probability of treatment weighting (IPTW) to settings where units are geographically located and treatment assignment may depend on spatial factors such as location, neighborhood characteristics, or spatial clustering. By incorporating spatial covariates into the propensity score model and adjusting standard errors for spatial autocorrelation, it produces more credible causal estimates from observational geographic data.Spatial Regression Discontinuity Design uses a geographic or administrative boundary as the threshold that assigns units to treatment. Observations just inside one side of the boundary are compared with those just outside it, exploiting the near-random variation in treatment status near the cutoff to recover a local causal effect. The approach is widely used in economics, political science, and public health when policies or institutions change sharply at a border.
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ScholarGateSalīdzināt metodes: Spatial Propensity Score Weighting · Spatial Regression Discontinuity Design. Izgūts 2026-06-18 no https://scholargate.app/lv/compare