Identifying the Effect of Changing the Policy Threshold in Regression Discontinuity Models∗
نویسندگان
چکیده
Regression discontinuity models, where the probability of treatment jumps discretely when a running variable crosses a threshold, are commonly used to nonparametrically identify and estimate a local average treatment effect. We show that the derivative of this treatment effect with respect to the running variable is nonparametrically identified and easily estimated. Then, given a local policy invariance assumption, we show that this derivative equals the change in the treatment effect that would result from a marginal change in the threshold, which we call the marginal threshold treatment effect (MTTE). We apply this result to Manacorda (2012), who estimates a treatment effect of grade retention on school outcomes. Our MTTE identifies how this treatment effect would change if the threshold for retention was raised or lowered, even though no such change in threshold is actually observed. JEL Codes: C21, C25
منابع مشابه
Identifying the Effect of Changing the Policy Threshold in Regression Discontinuity Models - Supplemental Appendix
This is a Supplemental online Appendix, containing additional theoretical and empirical results. 1 Supplemental Online Appendix Here we provide additional supplemental material. First is some details regarding extensions to higher order derivatives and larger than marginal changes in the threshold. Next is a second empirical application, showing application of our methods in a fuzzy design cont...
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