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תכנון רגרסיה מרחבית של אי-רציפות (Spatial RDD)×התאמת ציון נטייה×
תחוםהסקה סיבתיתסטטיסטיקה למחקר
משפחהRegression modelProcess / pipeline
שנת המקור2010s1983
הוגה השיטהPopularized by Dell (2010); formalized for geographic boundaries by Keele & Titiunik (2015)Paul Rosenbaum and Donald Rubin
סוגQuasi-experimental causal inferenceMethod
מקור מכונןDell, M. (2010). The Persistent Effects of Peru's Mining Mita. Econometrica, 78(6), 1863-1903. DOI ↗Rosenbaum, 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 ↗
כינוייםSpatial RDD, Geographic RDD, Border RD Design, Geographic Discontinuity DesignPSM, propensity score weighting, covariate balance
קשורות43
תקצירSpatial 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.Propensity score matching (PSM) is a method for reducing confounding bias in observational studies by balancing baseline characteristics between treatment groups, simulating randomization. Developed by Rosenbaum and Rubin (1983), it estimates the probability of receiving treatment given observed covariates, then matches or weights treated and control individuals with similar treatment probabilities. Widely used in medicine, epidemiology, and policy evaluation when randomized trials are infeasible or unethical, enabling estimation of treatment effects while controlling for selection bias.
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ScholarGateהשוואת שיטות: Spatial Regression Discontinuity Design · Propensity Score Matching. אוחזר בתאריך 2026-06-18 מתוך https://scholargate.app/he/compare