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Building a reduced model

Variable importance analysis helped you identify the most predictive features from the attrition dataset. Based on it, you will build a drastically reduced model with only three variables: OverTime, DistanceFromHome, and NumCompaniesWorked and compare its performance to the full model baseline. The metrics you estimated for the full model are stored in aug_full.

All data, along with the train and test splits, is available in your environment.

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Feature Engineering in R

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# Create a recipe using the formula syntax that includes only OverTime, DistanceFromHome and NumCompaniesWorked as predictors
recipe_reduced <-
  ___(Attrition ~ ___ + ___ + ___, data = train)

# Bundle the recipe with your model
workflow_reduced <-
  workflow() %>%
  add_model(model) %>%
  ___
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