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Multi-Cutoff RD Designs with Observations Located at Each Cutoff: Problems and Solutions

Author

Listed:
  • Fort, Margherita

    (University of Bologna)

  • Ichino, Andrea

    (European University Institute)

  • Rettore, Enrico

    (University of Padova)

  • Zanella, Giulio

    (University of Bologna)

Abstract

In RD designs with multiple cutoffs, the identification of an average causal effect across cutoffs may be problematic if a marginally exposed subject is located exactly at each cutoff. This occurs whenever a fixed number of treatment slots is allocated starting from the subject with the highest (or lowest) value of the score, until exhaustion. Exploiting the "within" variability at each cutoff is the safest and likely efficient option. Alternative strategies exist, but they do not always guarantee identification of a meaningful causal effect and are less precise. To illustrate our findings, we revisit the study of Pop-Eleches and Urquiola (2013).

Suggested Citation

  • Fort, Margherita & Ichino, Andrea & Rettore, Enrico & Zanella, Giulio, 2022. "Multi-Cutoff RD Designs with Observations Located at Each Cutoff: Problems and Solutions," IZA Discussion Papers 15051, Institute of Labor Economics (IZA).
  • Handle: RePEc:iza:izadps:dp15051
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    7. Cingano, Federico & Palomba, Filippo & Pinotti, Paolo & Rettore, Enrico, 2023. "Granting more bang for the buck: The heterogeneous effects of firm subsidies," Labour Economics, Elsevier, vol. 83(C).

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    More about this item

    Keywords

    regression discontinuity; multiple cutoffs; normalizing-and-pooling;
    All these keywords.

    JEL classification:

    • C01 - Mathematical and Quantitative Methods - - General - - - Econometrics

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