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Regression discontinuity design in education research×Нечеткий регрессионный разрывный дизайн×
ОбластьПричинно-следственный выводПричинно-следственный вывод
СемействоRegression modelRegression model
Год появления1960 (origination); 1999-2010 (education economics canon)2001
Автор методаThistlethwaite & Campbell (1960); popularized in education economics by Angrist & Lavy (1999), Lee & Lemieux (2010)Hahn, Todd & van der Klaauw
ТипQuasi-experimental causal inferenceQuasi-experimental causal inference
Основополагающий источникLee, D. S., & Lemieux, T. (2010). Regression discontinuity designs in economics. Journal of Economic Literature, 48(2), 281-355. 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 ↗
Другие названияRDD in education, education RD design, sharp RDD education, score-cutoff designFuzzy RD, Fuzzy RDD, Fuzzy RD Design, Imperfect RDD
Связанные55
СводкаRegression discontinuity design (RDD) in education research exploits a score-based eligibility cutoff — such as a test score threshold, GPA requirement, or age cutoff — to estimate the causal effect of a program, intervention, or policy on student or school outcomes. Units just below and just above the cutoff are treated as near-randomly assigned, enabling credible causal inference without a randomized trial.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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ScholarGateСравнение методов: Regression discontinuity design in education research · Fuzzy Regression Discontinuity. Получено 2026-06-20 из https://scholargate.app/ru/compare