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missForest

Nonparametric Missing Value Imputation using Random Forest

The function 'missForest' in this package is used to impute missing values particularly in the case of mixed-type data. It uses a random forest trained on the observed values of a data matrix to predict the missing values. It can be used to impute continuous and/or categorical data including complex interactions and non-linear relations. It yields an out-of-bag (OOB) imputation error estimate without the need of a test set or elaborate cross-validation. It can be run in parallel to save computation time.

Functions (6)

missForest

Nonparametric Missing Value Imputation using Random Forest

v1.4
GPL (>= 2)
Authors
Daniel J. Stekhoven <stekhoven@stat.math.ethz.ch>
Initial release
2013-12-31

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