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CovSel (version 1.2.2)

Model-Free Covariate Selection

Description

Model-free selection of covariates under unconfoundedness for situations where the parameter of interest is an average causal effect. This package is based on model-free backward elimination algorithms proposed in de Luna, Waernbaum and Richardson (2011). Marginal co-ordinate hypothesis testing is used in situations where all covariates are continuous while kernel-based smoothing appropriate for mixed data is used otherwise.

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Version

Install

install.packages('CovSel')

Monthly Downloads

407

Version

1.2.2

License

GPL-3

Maintainer

Jenny Häggström

Last Published

April 9th, 2025

Functions in CovSel (1.2.2)

datf

Simulated Data, Factors
summary.cov.sel

Summary
datc

Simulated Data, Continuous
cov.sel.np

cov.sel.np
lalonde

Real data, Lalonde
datfc

Simulated Data, Mixed
cov.sel

Model-Free Selection of Covariate Sets