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| تقييم السياسات عبر المطابقة التامة التقريبية (CEM)× | منهج الضابط الاصطناعي (SCM)× | |
|---|---|---|
| المجال | الاستدلال السببي | الاستدلال السببي |
| العائلة | Regression model | Regression model |
| سنة النشأة≠ | 2011-2012 | 2003–2010 |
| صاحب الطريقة≠ | Iacus, King & Porro | Alberto Abadie & Javier Gardeazabal (2003); Abadie, Diamond & Hainmueller (2010) |
| النوع≠ | Matching / quasi-experimental design | Quasi-experimental causal inference |
| المصدر التأسيسي≠ | Iacus, S. M., King, G., & Porro, G. (2012). Causal inference without balance checking: Coarsened exact matching. Political Analysis, 20(1), 1-24. DOI ↗ | Abadie, A., Diamond, A., & Hainmueller, J. (2010). Synthetic Control Methods for Comparative Case Studies: Estimating the Effect of California's Tobacco Control Program. Journal of the American Statistical Association, 105(490), 493-505. DOI ↗ |
| الأسماء البديلة | CEM, Coarsened Exact Matching, CEM policy evaluation, coarsening-based matching | SCM, synthetic control, synth estimator, Abadie-Diamond-Hainmueller method |
| ذات صلة≠ | 5 | 4 |
| الملخص≠ | Coarsened Exact Matching (CEM) is a quasi-experimental causal-inference technique that creates balanced treatment and control groups from observational data by temporarily coarsening covariates into bins, exactly matching units within those bins, and then pruning unmatched observations before estimating policy effects. Introduced by Iacus, King, and Porro, CEM belongs to the monotonic imbalance bounding family of matching methods and is especially popular in policy evaluation. | The Synthetic Control Method estimates the causal effect of a treatment or policy on a single treated unit by constructing a weighted combination of untreated units — the synthetic control — that closely resembles the treated unit before the intervention. The gap between the treated unit and its synthetic counterpart after the intervention is the estimated treatment effect. |
| ScholarGateمجموعة البيانات ↗ |
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