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Машинно обучение-аугментиран метод на синтетичен контрол×Метод на разликите в разликите (Difference-in-Differences, DiD)×
ОбластПричинно-следствено заключениеИконометрия
СемействоRegression modelRegression model
Година на възникване20211994
СъздателBen-Michael, Feller & RothsteinCard & Krueger (canonical 1994 application); Angrist & Pischke (textbook treatment)
ТипCausal inference / quasi-experimentalCausal inference / panel regression
Основополагащ източникBen-Michael, E., Feller, A., & Rothstein, J. (2021). The augmented synthetic control method. Journal of the American Statistical Association, 116(536), 1789-1803. DOI ↗Angrist, J. D., & Pischke, J.-S. (2009). Mostly Harmless Econometrics: An Empiricist's Companion. Princeton University Press. ISBN: 978-0691120355
Други названияML-augmented SCM, augmented synthetic control, ASC, penalized synthetic controldiff-in-diff, DiD, Farkların Farkı (Diff-in-Diff)
Свързани55
РезюмеThe machine learning-augmented synthetic control method extends the classical synthetic control estimator by using penalized regression or other ML algorithms — such as lasso, ridge, or random forests — to construct the donor weights and to model pre-treatment outcome trajectories. The augmentation corrects for residual imbalance left by the standard weighting step, yielding lower bias when no perfect synthetic control exists.Difference-in-Differences is a causal-inference method that estimates the effect of an intervention by comparing how a treatment group and a control group change over time. Made famous by Card and Krueger's 1994 minimum-wage study and developed in Angrist and Pischke's Mostly Harmless Econometrics, it isolates the treatment effect as the difference between the two groups' before-after changes.
ScholarGateНабор от данни
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  2. 2 Източници
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  1. v1
  2. 2 Източници
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ScholarGateСравнение на методи: Machine Learning-Augmented Synthetic Control Method · Difference-in-Differences. Извлечено на 2026-06-15 от https://scholargate.app/bg/compare