
This paper considers the identification of treatment effects on conditional transition probabilities. We show that even under random assignment only the instantaneous average treatment effect is point identified. Since treated and control units drop out at different rates, randomization only ensures the comparability of treatment and controls at the time of randomization, so that long-run average treatment effects are not point identified. Instead we derive informative bounds on these average treatment effects. Our bounds do not impose (semi)parametric restrictions, for example, proportional hazards. We also explore various assumptions such as monotone treatment response, common shocks and positively correlated outcomes that tighten the bounds.
40 pages, 5 tables
treatment effect, ddc:330, Treatment effect, Econometrics (econ.EM), Partial identi fication, duration model, randomized experiment, treatment effect, Parametric hypothesis testing, partial identification, randomized experiment, FOS: Economics and business, Randomized experiment, C41, Partial identification, duration model, Sannolikhetsteori och statistik, C14, Probability Theory and Statistics, Applications of statistics to economics, Duration model, Economics - Econometrics
treatment effect, ddc:330, Treatment effect, Econometrics (econ.EM), Partial identi fication, duration model, randomized experiment, treatment effect, Parametric hypothesis testing, partial identification, randomized experiment, FOS: Economics and business, Randomized experiment, C41, Partial identification, duration model, Sannolikhetsteori och statistik, C14, Probability Theory and Statistics, Applications of statistics to economics, Duration model, Economics - Econometrics
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