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Finalizing the model

It is time to implement the results of your tuning work and impress the Human Resources team. You can finalize your model with the optimal penalty identified and see if it meets your expectations. Your results have been loaded, and the user-defined function class_evaluate() is available in your environment.

Questo esercizio fa parte del corso

Feature Engineering in R

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Istruzioni dell'esercizio

  • Select the optimal penalty for the Lasso.
  • Fit a final model using the optimal penalty.

Esercizio pratico interattivo

Prova a risolvere questo esercizio completando il codice di esempio.

# Select the optimal penalty for the Lasso
best_penalty <- ___(tune_output, metric = 'roc_auc', desc(penalty)) 
best_penalty

# Fit a final model using the optimal penalty
final_fit <- ___(workflow_lasso_tuned, best_penalty) %>%
  fit(data = train)

final_fit %>% tidy()

final_fit %>% augment(test) %>% class_evaluate(truth = Attrition, 
                                   estimate = .pred_class,
                                   .pred_Yes)
Modifica ed esegui il codice