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Xgboost

Xgboost

Scalable machine learning system for tree boosting

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All edits by  Warin Chivakanit 

Edits on 16 Apr, 2022
Warin Chivakanit profile picture
Warin Chivakanit
edited on 16 Apr, 2022
Edits made to:
Article
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XGBoost is an optimized distributed gradient boosting library designed to be highly efficient, flexible and portable. It implements machine learning algorithms under the Gradient Boosting framework. XGBoost provides a parallel tree boosting (also known as GBDT, GBM) that solve many data science problems in a fast and accurate way. The same code runs on major distributed environment (Hadoop, SGE, MPI) and can solve problems beyond billions of examples. XGBoost originates from research project at University of Washington.

Warin Chivakanit profile picture
Warin Chivakanit
edited on 16 Apr, 2022
Edits made to:
Article (+70 characters)
Table (+1 rows) (+5 cells) (+127 characters)
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Xgboost

Scalable machine learning system for tree boosting

Article

XGBoost is an optimized distributed gradient boosting library designed to be highly efficient, flexible and portable. It implements machine learning algorithms under the Gradient Boosting framework. XGBoost provides a parallel tree boosting (also known as GBDT, GBM) that solve many data science problems in a fast and accurate way. The same code runs on major distributed environment (Hadoop, SGE, MPI) and can solve problems beyond billions of examples. XGBoost originates from research project at University of Washington.

Table

Title
Author
Link
Type
Date

XGBoost: A Scalable Tree Boosting System

Tianqi Chen, Carlos Guestrin

https://arxiv.org/abs/1603.02754

Research Paper

March 9, 2016

Warin Chivakanit profile picture
Warin Chivakanit
edited on 16 Apr, 2022
Edits made to:
Infobox (+9 properties)
Timeline (+1 events) (+72 characters)
Article (+455 characters)
Categories (+1 topics)
Article

XGBoost is an optimized distributed gradient boosting library designed to be highly efficient, flexible and portable. It implements machine learning algorithms under the Gradient Boosting framework. XGBoost provides a parallel tree boosting (also known as GBDT, GBM) that solve many data science problems in a fast and accurate way. The same code runs on major distributed environment (Hadoop, SGE, MPI) and can solve problems beyond billions of examples.

Infobox
Is a
Software
Software
Community forum
https://xgboost.ai/
Repository
https://github.com/dmlc/xgboost
License
Apache License 2.0
First release
March 27, 2014
Latest release
April 16, 2022
Latest version
1.6.0
Website
https://xgboost.ai/
Industry
Machine learning
Machine learning
Timeline

March 27, 2014

First release: XGBoost with regression and binary classification support

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