catboost

A fast, scalable, high performance Gradient Boosting on Decision Trees library, used for ranking, classification, regression and other machine learning tasks for Python, R, Java, C++. Supports computation on CPU and GPU.

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CatBoost is a machine learning method based on gradient boosting over decision trees.

Main advantages of CatBoost:

Gradient Boosting Survey

We want to make the best Gradient Boosting library in the world. Please, help us to do so! Complete our survey to help us understand what is important for GBDT users.

Get Started and Documentation

All CatBoost documentation is available here.

Install CatBoost by following the guide for the

Next you may want to investigate:

Catboost models in production

If you want to evaluate Catboost model in your application read model api documentation.

Questions and bug reports

Help to Make CatBoost Better

  • Check out help wanted issues to see what can be improved, or open an issue if you want something.
  • Add your stories and experience to Awesome CatBoost.
  • To contribute to CatBoost you need to first read CLA text and add to your pull request, that you agree to the terms of the CLA. More information can be found
    in CONTRIBUTING.md
  • Instructions for contributors can be found here.

News

Latest news are published on twitter.

Reference Paper

Anna Veronika Dorogush, Andrey Gulin, Gleb Gusev, Nikita Kazeev, Liudmila Ostroumova Prokhorenkova, Aleksandr Vorobev "Fighting biases with dynamic boosting". arXiv:1706.09516, 2017.

Anna Veronika Dorogush, Vasily Ershov, Andrey Gulin "CatBoost: gradient boosting with categorical features support". Workshop on ML Systems
at NIPS 2017.

License

© YANDEX LLC, 2017-2019. Licensed under the Apache License, Version 2.0. See LICENSE file for more details.

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名称与所有者catboost/catboost
主编程语言C++
编程语言Python (语言数: 24)
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许可证Apache License 2.0
所有者活动
创建于2017-07-18 05:29:04
推送于2025-04-23 19:47:56
最后一次提交2025-04-23 22:24:43
发布数94
最新版本名称v1.2.8 (发布于 2025-04-13 04:00:23)
第一版名称v0.2 (发布于 )
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