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xgboost/demo/guide-python/README.md
Jiaming Yuan 5b2f805e74
Doc and demo for customized metric and obj. (#4598)
Co-Authored-By: Theodore Vasiloudis <theodoros.vasiloudis@gmail.com>
2019-06-26 16:13:12 +08:00

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XGBoost Python Feature Walkthrough

  • Basic walkthrough of wrappers
  • Customize loss function, and evaluation metric
  • Re-implement RMSLE as customized metric and objective
  • Boosting from existing prediction
  • Predicting using first n trees
  • Generalized Linear Model
  • Cross validation
  • Predicting leaf indices
  • Sklearn Wrapper
  • Sklearn Parallel
  • Sklearn access evals result
  • Access evals result
  • External Memory
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