Created
June 2, 2022 18:27
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# hyperparameter tuning the DecisionTree model | |
params ={'max_depth':[1, 5, 10, 50],'min_samples_split':[5, 10, 100, 500]} | |
# Create a custom (MCC) metric for evaluation of the model performance while | |
mcc = make_scorer(matthews_corrcoef, greater_is_better=True) | |
# Create an XGBoost classifier object with log-loss as the loss function to minimize | |
dt_clf = tree.DecisionTreeClassifier(random_state=42, class_weight='balanced') | |
# Perform stratified 5-fold cross validation | |
grid_clf = GridSearchCV(dt_clf, params, scoring=mcc, cv=5, return_train_score=True) | |
# Fit the model | |
grid_clf .fit(X_train, y_train) | |
print(f"Best CV score: {grid_clf.best_score_}") |
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