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Search: WFRF:(Häggström Jenny) > (2015-2019) > CovSel :

CovSel : An R Package for Covariate Selection When Estimating Average Causal Effects

Häggström, Jenny (author)
Umeå universitet,Statistik,Stat4Reg,Umeå universitet, Statistik
Persson, Emma (author)
Umeå universitet,Statistik,Stat4Reg,Umeå universitet, Statistik
Waernbaum, Ingeborg (author)
Umeå universitet,Statistik,Stat4Reg,Umeå universitet, Statistik
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de Luna, Xavier (author)
Umeå universitet,Statistik,Stat4Reg,Umeå universitet, Statistik
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 (creator_code:org_t)
2015
2015
English.
In: Journal of Statistical Software. - : Foundation for Open Access Statistic. - 1548-7660. ; 68:1, s. 1-20
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • We describe the R package CovSel, which reduces the dimension of the covariate vector for the purpose of estimating an average causal effect under the unconfoundedness assumption. Covariate selection algorithms developed in De Luna, Waernbaum, and Richardson (2011) are implemented using model-free backward elimination. We show how to use the package to select minimal sets of covariates. The package can be used with continuous and discrete covariates and the user can choose between marginal co-ordinate hypothesis tests and kernel-based smoothing as model-free dimension reduction techniques.

Subject headings

NATURVETENSKAP  -- Matematik -- Sannolikhetsteori och statistik (hsv//swe)
NATURAL SCIENCES  -- Mathematics -- Probability Theory and Statistics (hsv//eng)

Keyword

causal inference
dimension reduction
dr
np
R

Publication and Content Type

ref (subject category)
art (subject category)

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