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Model parameters vs. hyperparameters

In order to perform hyperparameter tuning, it is important to really understand what hyperparameters are (and what they are not). So let's look at model parameters versus hyperparameters in detail.

Note: The Breast Cancer Wisconsin (Diagnostic) dataset has been loaded as breast_cancer_data for you.

Cet exercice fait partie du cours

Hyperparameter Tuning in R

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Instructions

  • Use this dataset to fit a linear model with concavity_mean as response and symmetry_mean as predictor variable.
  • Look at the summary() of this linear model.
  • Extract the coefficients.

Exercice interactif pratique

Essayez cet exercice en complétant cet exemple de code.

# Fit a linear model on the breast_cancer_data.
linear_model <- ___(___)

# Look at the summary of the linear_model.
___

# Extract the coefficients.
___
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