16 lines
770 B
Markdown
16 lines
770 B
Markdown
XGBoost Python Feature Walkthrough
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==================================
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* [Basic walkthrough of wrappers](basic_walkthrough.py)
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* [Customize loss function, and evaluation metric](custom_objective.py)
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* [Re-implement RMSLE as customized metric and objective](custom_rmsle.py)
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* [Boosting from existing prediction](boost_from_prediction.py)
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* [Predicting using first n trees](predict_first_ntree.py)
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* [Generalized Linear Model](generalized_linear_model.py)
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* [Cross validation](cross_validation.py)
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* [Predicting leaf indices](predict_leaf_indices.py)
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* [Sklearn Wrapper](sklearn_examples.py)
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* [Sklearn Parallel](sklearn_parallel.py)
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* [Sklearn access evals result](sklearn_evals_result.py)
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* [Access evals result](evals_result.py)
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* [External Memory](external_memory.py)
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