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Regression Discontinuity in Elections×Регресионен дизайн с прекъсване (Regression Discontinuity Design - RDD)×
ОбластPolitical ScienceПричинно-следствено заключение
СемействоProcess / pipelineRegression model
Година на възникване20082008
СъздателDavid S. Lee (electoral application); broader RD traditionImbens & Lemieux (guide to practice); Cattaneo, Idrobo & Titiunik (practical introduction)
ТипQuasi-experimental causal design using a vote-share thresholdQuasi-experimental causal design
Основополагащ източникLee, D. S. (2008). Randomized Experiments from Non-random Selection in U.S. House Elections. Journal of Econometrics, 142(2), 675–697. DOI ↗Imbens, G. W., & Lemieux, T. (2008). Regression Discontinuity Designs: A Guide to Practice. Journal of Econometrics, 142(2), 615-635. DOI ↗
Други названияClose-election RD, Electoral regression discontinuity, Vote-share RD design, Incumbency-advantage RDRDD, regression discontinuity design, sharp RDD, fuzzy RDD
Свързани35
РезюмеRegression discontinuity in elections is a quasi-experimental design that exploits the sharp winning threshold in electoral contests to estimate causal effects of holding office. Just above the threshold a candidate or party wins; just below, it loses. In very close races, which side ends up just over the line is plausibly as good as random, so comparing the later outcomes of bare winners and bare losers identifies the causal effect of winning — most famously the incumbency advantage — without confounding by candidate or district quality.Regression Discontinuity Design is a quasi-experimental method that identifies a causal effect by locally comparing units just above and just below a cutoff on a continuous assignment (running) variable. Formalised for applied work by Imbens and Lemieux (2008) and developed as a practical framework by Cattaneo, Idrobo, and Titiunik (2020), it estimates a local average treatment effect (LATE) at the threshold.
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ScholarGateСравнение на методи: Regression Discontinuity in Elections · Regression Discontinuity. Извлечено на 2026-06-25 от https://scholargate.app/bg/compare