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Хетерогенни ефекти от лечение (CATE / Мета-обучаващи алгоритми)×Съгласуване по показател на склонност×
ОбластПричинно-следствено заключениеСтатистика за изследвания
СемействоRegression modelProcess / pipeline
Година на възникване20181983
СъздателWager & Athey (causal forest); Künzel et al. (meta-learners)Paul Rosenbaum and Donald Rubin
ТипCausal machine-learning frameworkMethod
Основополагащ източникWager, S. & Athey, S. (2018). Estimation and Inference of Heterogeneous Treatment Effects using Random Forests. Journal of the American Statistical Association. DOI ↗Rosenbaum, P. R., & Rubin, D. B. (1983). The central role of the propensity score in observational studies for causal effects. Biometrika, 70(1), 41–55. DOI ↗
Други названияconditional average treatment effect, CATE, meta-learners, causal forestPSM, propensity score weighting, covariate balance
Свързани53
РезюмеHeterogeneous Treatment Effects is a machine-learning framework that estimates how a treatment effect varies across individuals — the conditional average treatment effect (CATE). It bundles meta-learner strategies such as the T-Learner, S-Learner, X-Learner and R-Learner alongside the causal forest of Wager and Athey (2018) and Künzel et al. (2019).Propensity score matching (PSM) is a method for reducing confounding bias in observational studies by balancing baseline characteristics between treatment groups, simulating randomization. Developed by Rosenbaum and Rubin (1983), it estimates the probability of receiving treatment given observed covariates, then matches or weights treated and control individuals with similar treatment probabilities. Widely used in medicine, epidemiology, and policy evaluation when randomized trials are infeasible or unethical, enabling estimation of treatment effects while controlling for selection bias.
ScholarGateНабор от данни
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ScholarGateСравнение на методи: Heterogeneous Treatment Effects · Propensity Score Matching. Извлечено на 2026-06-19 от https://scholargate.app/bg/compare