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FindIt (version 1.3.0)

Finding Heterogeneous Treatment Effects

Description

The heterogeneous treatment effect estimation procedure proposed by Imai and Ratkovic (2013). The proposed method is applicable, for example, when selecting a small number of most (or least) efficacious treatments from a large number of alternative treatments as well as when identifying subsets of the population who benefit (or are harmed by) a treatment of interest. The method adapts the Support Vector Machine classifier by placing separate LASSO constraints over the pre-treatment parameters and causal heterogeneity parameters of interest. This allows for the qualitative distinction between causal and other parameters, thereby making the variable selection suitable for the exploration of causal heterogeneity. The package also contains a class of functions, CausalANOVA, which estimates the average marginal interaction effects (AMIEs) by a regularized ANOVA as proposed by Egami and Imai (2019). It contains a variety of regularization techniques to facilitate analysis of large factorial experiments.

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Version

Install

install.packages('FindIt')

Monthly Downloads

250

Version

1.3.0

License

GPL (>= 2)

Maintainer

Naoki Egami

Last Published

September 23rd, 2025

Functions in FindIt (1.3.0)

Carlson

Data from conjoint analysis in Carlson (2015).
summary.CausalANOVA

Summarizing CausalANOVA output
predict.FindIt

Computing predicted values for each sample in the data.
test.CausalANOVA

Estimating the AMEs and AMIEs after Regularization with the CausalANOVA.
GerberGreen

Data from the 1998 New Haven Get-Out-the-Vote Experiment
FindIt-package

FindIt: Finding Heterogeneous Treatment Effects
CausalANOVA

Estimating the AMEs and AMIEs with the CausalANOVA.
FindIt

FindIt for Estimating Heterogeneous Treatment Effects
plot.CausalANOVA

Plotting CausalANOVA
ConditionalEffect

Estimating the Conditional Effects with the CausalANOVA.
cv.CausalANOVA

Cross validation for the CausalANOVA.
summary.FindIt

Summarizing FindIt output
plot.PredictFindIt

Plot estimated treatment effects or predicted outcomes for each treatment combination.
LaLonde

National Supported Work Study Experimental Data