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حوزهاستنتاج علّیاستنتاج علّی
خانوادهRegression modelRegression model
سال پیدایش1986-20102021
پدیدآورRobins (1986) on sequential treatments; Lechner & Miquel (2010) on dynamic matchingCallaway & Sant'Anna; Sun & Abraham
نوعSequential causal matchingCausal inference / quasi-experimental
منبع بنیادینLechner, M., & Miquel, R. (2010). Identification of the effects of dynamic treatments by sequential conditional independence assumptions. Empirical Economics, 39(1), 111-137. DOI ↗Callaway, B., & Sant'Anna, P. H. C. (2021). Difference-in-differences with multiple time periods. Journal of Econometrics, 225(2), 200-230. DOI ↗
نام‌های دیگرdynamic PSM, sequential propensity score matching, longitudinal propensity matching, DPSMDynamic DiD, Staggered DiD, Event-time DiD, Heterogeneous-timing DiD
مرتبط64
خلاصهDynamic Propensity Score Matching (DPSM) extends classic propensity score matching to settings where treatment is assigned repeatedly over time and earlier treatment choices influence later ones. It estimates the causal effect of entire treatment sequences or regime changes by constructing matched comparisons at each decision point using the full history of covariates and prior treatments.Dynamic Difference-in-Differences extends the classic DiD framework to settings where units adopt treatment at different times. Rather than collapsing all variation into a single 2x2 comparison, it estimates group-time average treatment effects for each adoption cohort at each calendar period, then aggregates them into interpretable summaries of the causal effect over event time.
ScholarGateمجموعه‌داده
  1. v1
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  3. PUBLISHED
  1. v1
  2. 2 منابع
  3. PUBLISHED

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ScholarGateمقایسهٔ روش‌ها: Dynamic Propensity Score Matching · Dynamic Difference-in-Differences. بازیابی‌شده در 2026-06-15 از https://scholargate.app/fa/compare