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Reka Bentuk Pekali Regresi yang Teguh×Reka Bentuk Regresi Ketaklanjaran Kabur×
BidangInferens KausalInferens Kausal
KeluargaRegression modelRegression model
Tahun asal20142001
PengasasCalonico, Cattaneo & TitiunikHahn, Todd & van der Klaauw
JenisQuasi-experimental causal inferenceQuasi-experimental causal inference
Sumber perintisCalonico, S., Cattaneo, M. D., & Titiunik, R. (2014). Robust Nonparametric Confidence Intervals for Regression-Discontinuity Designs. Econometrica, 82(6), 2295-2326. 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 ↗
AliasRobust RDD, Bias-corrected RDD, CCT estimator, rdrobustFuzzy RD, Fuzzy RDD, Fuzzy RD Design, Imperfect RDD
Berkaitan45
RingkasanRobust RDD extends the classical regression discontinuity design with bias correction and robust confidence intervals, addressing the under-coverage problem of conventional RDD inference. Developed by Calonico, Cattaneo, and Titiunik (2014), it uses local polynomial estimation with a bias-corrected point estimate and a wider variance term that accounts for the added uncertainty, yielding confidence intervals with correct asymptotic coverage.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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ScholarGateBandingkan kaedah: Robust Regression Discontinuity Design · Fuzzy Regression Discontinuity. Dicapai 2026-06-18 daripada https://scholargate.app/ms/compare