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| مطابقة درجات الميل لبيانات اللوحات× | موازنة الإنتروبيا× | |
|---|---|---|
| المجال | الاستدلال السببي | الاستدلال السببي |
| العائلة | Regression model | Regression model |
| سنة النشأة≠ | 1997-1998 | 2012 |
| صاحب الطريقة≠ | Heckman, Ichimura & Todd | Jens Hainmueller |
| النوع≠ | Matching / causal inference | Covariate-balancing reweighting |
| المصدر التأسيسي≠ | Heckman, J. J., Ichimura, H., & Todd, P. (1998). Matching as an Econometric Evaluation Estimator. Review of Economic Studies, 65(2), 261-294. DOI ↗ | Hainmueller, J. (2012). Entropy balancing for causal effects: A multivariate reweighting method to produce balanced samples in observational studies. Political Analysis, 20(1), 25-46. DOI ↗ |
| الأسماء البديلة | PSM with panel data, longitudinal PSM, panel PSM, difference-in-differences PSM | EB, entropy reweighting, covariate balancing via entropy, Hainmueller balancing |
| ذات صلة | 6 | 6 |
| الملخص≠ | Panel data propensity score matching combines the bias-reduction of PSM with the longitudinal structure of panel data, enabling causal estimation of treatment effects by matching treated and control units on observable pre-treatment characteristics and then differencing within matched pairs over time. Developed in the framework of Heckman, Ichimura, and Todd (1998), it is especially valuable when randomisation is infeasible and both selection on observables and time-varying confounding must be addressed simultaneously. | Entropy balancing is a preprocessing method for causal inference that assigns weights to control-group units so that the reweighted control sample matches the treatment group exactly on a chosen set of covariate moments (means, variances, skewness). Introduced by Hainmueller (2012), it replaces trial-and-error propensity-score trimming with a constrained maximum-entropy optimisation that achieves balance in a single step. |
| ScholarGateمجموعة البيانات ↗ |
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