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분야인과추론인과추론
계열Regression modelRegression model
기원 연도1960; policy evaluation applications widespread from 2000s1978-2009
창시자Thistlethwaite & Campbell (1960); popularized in policy evaluation by Lee & Lemieux (2010)Ashenfelter (1978); Heckman, LaLonde & Smith (1999); Imbens & Wooldridge (2009)
유형Quasi-experimental causal designQuasi-experimental / policy evaluation
원전Lee, D. S., & Lemieux, T. (2010). Regression Discontinuity Designs in Economics. Journal of Economic Literature, 48(2), 281-355. DOI ↗Imbens, G. W., & Wooldridge, J. M. (2009). Recent Developments in the Econometrics of Program Evaluation. Journal of Economic Literature, 47(1), 5-86. DOI ↗
별칭Policy RDD, RD design in policy evaluation, regression discontinuity policy analysis, RDD policy impactpolicy DiD, program evaluation DiD, policy impact DiD, DiD policy assessment
관련54
요약Policy Evaluation Regression Discontinuity Design (Policy RDD) exploits a known eligibility threshold in a policy rule to estimate the causal effect of that policy on outcomes. Units just below the cutoff serve as a credible comparison group for units just above it, making RDD one of the most transparent quasi-experimental strategies for assessing what a policy actually achieves.Policy Evaluation DiD applies the difference-in-differences estimator specifically to assess the causal impact of government programs, regulations, or policy reforms. It compares outcome changes in a group exposed to the policy against a comparable untreated group, before and after the policy took effect, isolating the net policy effect from pre-existing trends and time-common shocks.
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ScholarGate방법 비교: Policy Evaluation Regression Discontinuity Design · Policy Evaluation Difference-in-Differences. 2026-06-18에 다음에서 검색함: https://scholargate.app/ko/compare