Efficient Estimation of Average Treatment Effects Using the Estimated Propensity Score

Efficient Estimation of Average Treatment Effects Using the Estimated Propensity Score
Author: Keisuke Hirano
Publisher:
Total Pages: 0
Release: 2013
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We are interested in estimating the average effect of a binary treatment on a scalar outcome. If assignment to the treatment is unconfounded, that is, independent of the potential outcomes given covariates, biases associated with simple treatment-control average comparisons can be removed by adjusting for differences in the covariates. Rosenbaum and Rubin (1983a) show that adjusting solely for differences between treated and control units in a scalar function of the covariates, the propensity score, also removes all biases associated with differences in covariates. Although adjusting for the propensity score removes all the bias, this can come at the expense of efficiency, as shown by Hahn (1998), Heckman, Ichimura, Todd (1998), and Rotnitzky and Robins (1995). We show that weighting by the inverse of a nonparametric estimate of the propensity score, rather than the true propensity score, leads to efficient estimates of the average treatment effect. We provide intuition for this result by showing that this estimator can be interpreted as an empirical likelihood estimator that efficiently incorporates the information about the propensity score.


Efficient Estimation of Average Treatment Effects Using the Estimated Propensity Score
Language: en
Pages: 0
Authors: Keisuke Hirano
Categories:
Type: BOOK - Published: 2013 - Publisher:

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We are interested in estimating the average effect of a binary treatment on a scalar outcome. If assignment to the treatment is unconfounded, that is, independe
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Categories:
Type: BOOK - Published: 2002 - Publisher:

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Efficient Propensity Score Regression Estimators of Multivalued Treatment Effects for the Treated
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Type: BOOK - Published: 2017 - Publisher:

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Matching is a widely used program evaluation estimation method when treatment is assigned at random conditional on observable characteristics. When a multivalue
Estimating Average Treatment Effects With Propensity Scores Estimated With Four Machine Learning Procedures
Language: en
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Authors: Kip Brown
Categories:
Type: BOOK - Published: 2018 - Publisher:

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Background: The increased availability of claims data allows one to build high dimensional datasets, rich in covariates, for accurately estimating treatment eff
Efficient Estimation of Average Treatment Effects Using the Estimated Propensity Score
Language: en
Pages: 68
Authors: Keisuke Hirano
Categories: Estimation theory
Type: BOOK - Published: 2000 - Publisher:

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We are interested in estimating the average effect of a binary treatment on a scalar outcome. If assignment to the treatment is independent of the potential out