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Crack the matrix

Visual representations are a great and intuitive way to assess results. One way to visualize and assess the performance of your model is by using a confusion matrix. In this exercise, you will create the confusion matrix of your predicted values to see in which cases it performs well and in which cases it doesn't.

The result of the previous exercise, predictions_combined, is still loaded.

Deze oefening maakt deel uit van de cursus

Machine Learning with Tree-Based Models in R

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Praktische interactieve oefening

Probeer deze oefening eens door deze voorbeeldcode in te vullen.

# The confusion matrix
diabetes_matrix <- ___(___,
                       ___,
                       ___)

# Print the matrix
___
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