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							Model description
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Intended uses & limitations
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Training Procedure
Hyperparameters
The model is trained with below hyperparameters.
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| Hyperparameter | Value | 
|---|---|
| aggressive_elimination | False | 
| cv | 5 | 
| error_score | nan | 
| estimator__categorical_features | |
| estimator__early_stopping | auto | 
| estimator__l2_regularization | 0.0 | 
| estimator__learning_rate | 0.1 | 
| estimator__loss | auto | 
| estimator__max_bins | 255 | 
| estimator__max_depth | |
| estimator__max_iter | 100 | 
| estimator__max_leaf_nodes | 31 | 
| estimator__min_samples_leaf | 20 | 
| estimator__monotonic_cst | |
| estimator__n_iter_no_change | 10 | 
| estimator__random_state | |
| estimator__scoring | loss | 
| estimator__tol | 1e-07 | 
| estimator__validation_fraction | 0.1 | 
| estimator__verbose | 0 | 
| estimator__warm_start | False | 
| estimator | HistGradientBoostingClassifier() | 
| factor | 3 | 
| max_resources | auto | 
| min_resources | exhaust | 
| n_jobs | -1 | 
| param_grid | {'max_leaf_nodes': [5, 10, 15], 'max_depth': [2, 5, 10]} | 
| random_state | 42 | 
| refit | True | 
| resource | n_samples | 
| return_train_score | True | 
| scoring | |
| verbose | 0 | 
Model Plot
The model plot is below.
HalvingGridSearchCV(estimator=HistGradientBoostingClassifier(), n_jobs=-1,param_grid={'max_depth': [2, 5, 10],'max_leaf_nodes': [5, 10, 15]},random_state=42)Please rerun this cell to show the HTML repr or trust the notebook.HalvingGridSearchCV(estimator=HistGradientBoostingClassifier(), n_jobs=-1,param_grid={'max_depth': [2, 5, 10],'max_leaf_nodes': [5, 10, 15]},random_state=42)HistGradientBoostingClassifier()
Evaluation Results
You can find the details about evaluation process and the evaluation results.
| Metric | Value | 
|---|
How to Get Started with the Model
Use the code below to get started with the model.
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Model Card Authors
This model card is written by following authors:
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Model Card Contact
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Citation
Below you can find information related to citation.
BibTeX:
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