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Semi-parametric estimation of treatment effects in randomised experiments

Publication ,  Journal Article
Athey, S; Bickel, PJ; Chen, A; Imbens, GW; Pollmann, M
Published in: Journal of the Royal Statistical Society. Series B: Statistical Methodology
November 1, 2023

We develop new semi-parametric methods for estimating treatment effects. We focus on settings where the outcome distributions may be thick tailed, where treatment effects may be small, where sample sizes are large, and where assignment is completely random. This setting is of particular interest in recent online experimentation. We propose using parametric models for the treatment effects, leading to semiparametric models for the outcome distributions. We derive the semi-parametric efficiency bound for the treatment effects for this setting, and propose efficient estimators. In the leading case with constant quantile treatment effects, one of the proposed efficient estimators has an interesting interpretation as a weighted average of quantile treatment effects, with the weights proportional to minus the second derivative of the log of the density of the potential outcomes. Our analysis also suggests an extension of Huber’s model and trimmed mean to include asymmetry.

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Published In

Journal of the Royal Statistical Society. Series B: Statistical Methodology

DOI

EISSN

1467-9868

ISSN

1369-7412

Publication Date

November 1, 2023

Volume

85

Issue

5

Start / End Page

1615 / 1638

Related Subject Headings

  • Statistics & Probability
  • 4905 Statistics
  • 3802 Econometrics
  • 1403 Econometrics
  • 0104 Statistics
  • 0102 Applied Mathematics
 

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Athey, S., Bickel, P. J., Chen, A., Imbens, G. W., & Pollmann, M. (2023). Semi-parametric estimation of treatment effects in randomised experiments. Journal of the Royal Statistical Society. Series B: Statistical Methodology, 85(5), 1615–1638. https://doi.org/10.1093/jrsssb/qkad072
Athey, S., P. J. Bickel, A. Chen, G. W. Imbens, and M. Pollmann. “Semi-parametric estimation of treatment effects in randomised experiments.” Journal of the Royal Statistical Society. Series B: Statistical Methodology 85, no. 5 (November 1, 2023): 1615–38. https://doi.org/10.1093/jrsssb/qkad072.
Athey S, Bickel PJ, Chen A, Imbens GW, Pollmann M. Semi-parametric estimation of treatment effects in randomised experiments. Journal of the Royal Statistical Society Series B: Statistical Methodology. 2023 Nov 1;85(5):1615–38.
Athey, S., et al. “Semi-parametric estimation of treatment effects in randomised experiments.” Journal of the Royal Statistical Society. Series B: Statistical Methodology, vol. 85, no. 5, Nov. 2023, pp. 1615–38. Scopus, doi:10.1093/jrsssb/qkad072.
Athey S, Bickel PJ, Chen A, Imbens GW, Pollmann M. Semi-parametric estimation of treatment effects in randomised experiments. Journal of the Royal Statistical Society Series B: Statistical Methodology. 2023 Nov 1;85(5):1615–1638.
Journal cover image

Published In

Journal of the Royal Statistical Society. Series B: Statistical Methodology

DOI

EISSN

1467-9868

ISSN

1369-7412

Publication Date

November 1, 2023

Volume

85

Issue

5

Start / End Page

1615 / 1638

Related Subject Headings

  • Statistics & Probability
  • 4905 Statistics
  • 3802 Econometrics
  • 1403 Econometrics
  • 0104 Statistics
  • 0102 Applied Mathematics