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Wielookresowy projekt regresji z załamaniem×Fuzzy Regression Discontinuity×
DziedzinaWnioskowanie przyczynoweWnioskowanie przyczynowe
RodzinaRegression modelRegression model
Rok powstania2010s–2020s2001
TwórcaCattaneo, Idrobo & Titiunik (foundations); extended by multiple authors for repeated-period settingsHahn, Todd & van der Klaauw
TypQuasi-experimental causal inferenceQuasi-experimental causal inference
Źródło pierwotneCattaneo, M. D., Idrobo, N., & Titiunik, R. (2020). A Practical Introduction to Regression Discontinuity Designs: Foundations. Cambridge University Press. DOI ↗Hahn, J., Todd, P., & van der Klaauw, W. (2001). Identification and Estimation of Treatment Effects with a Regression-Discontinuity Design. Review of Economic Studies, 68(1), 201-209. DOI ↗
Inne nazwymulti-wave RD, repeated RDD, dynamic RD, multi-cutoff RDDFuzzy RD, Fuzzy RDD, Fuzzy RD Design, Imperfect RDD
Pokrewne35
PodsumowanieMulti-period Regression Discontinuity Design extends the classic RDD to settings where a cutoff-based treatment is applied in multiple waves, across repeated time periods, or with varying thresholds. By pooling or comparing period-specific discontinuity estimates, researchers gain statistical precision and can examine how causal effects evolve or persist over time.Fuzzy Regression Discontinuity Design (Fuzzy RDD) estimates causal effects when eligibility for a treatment is determined by a threshold on a running variable but actual take-up of that treatment is imperfect — some eligible units do not receive treatment and some ineligible units do. The cutoff acts as an instrument, and the estimand is a Local Average Treatment Effect (LATE) for compliers near the threshold.
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ScholarGatePorównaj metody: Multi-period Regression Discontinuity Design · Fuzzy Regression Discontinuity. Pobrano 2026-06-19 z https://scholargate.app/pl/compare