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Multiple imputation using Fully Conditional Specification (FCS) implemented by the MICE algorithm. Each variable has its own imputation model. Built-in imputation models are provided for continuous data (predictive mean matching, normal), binary data (logistic regression), unordered categorical data (polytomous logistic regression) and ordered categorical data (proportional odds). MICE can also impute continuous two-level data (normal model, pan, second-level variables). Passive imputation can be used to maintain consistency between variables. Various diagnostic plots are available to inspect the quality of the imputations.

Type Size Name Uploaded Downloads Labels
conda 760.1 kB | win-64/r-mice-2.22-r3.2.2_0.tar.bz2  9 years and 8 months ago 45 main
conda 760.1 kB | win-32/r-mice-2.22-r3.2.2_0.tar.bz2  9 years and 8 months ago 35 main
conda 760.2 kB | osx-64/r-mice-2.22-r3.2.2_0.tar.bz2  9 years and 8 months ago 43 main
conda 760.1 kB | linux-64/r-mice-2.22-r3.2.2_0.tar.bz2  9 years and 8 months ago 69 main
conda 760.2 kB | linux-32/r-mice-2.22-r3.2.2_0.tar.bz2  9 years and 8 months ago 33 main
conda 751.9 kB | linux-64/r-mice-2.22-r3.2.1_0.tar.bz2  10 years and 3 months ago 42 main

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