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Assessing External Validity in Practice / Sebastian Galiani, Brian Quistorff.

NBER Working papers Available online

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Format:
Book
Author/Creator:
Galiani, Sebastian.
Contributor:
National Bureau of Economic Research.
Quistorff, Brian.
Series:
Working Paper Series (National Bureau of Economic Research) no. w30398.
NBER working paper series no. w30398
Language:
English
Physical Description:
1 online resource: illustrations (black and white);
Place of Publication:
Cambridge, Mass. National Bureau of Economic Research 2022.
Summary:
We review, from a practical standpoint, the evolving literature on assessing external validity (EV) of estimated treatment effects. We review existing EV measures, and focus on methods that permit multiple datasets (Hotz et al., 2005). We outline criteria for practical usage, evaluate the existing approaches, and identify a gap in potential methods. Our practical considerations motivate a novel method utilizing the Group Lasso (Yuan and Lin, 2006) to estimate a tractable regression-based model of the conditional average treatment effect (CATE). This approach can perform better when settings have differing covariate distributions and allows for easily extrapolating the average treatment effect to new settings. We apply these measures to a set of identical field experiments upgrading slum dwellings in three different countries (Galiani et al., 2017).
Notes:
Print version record
August 2022.

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