Tree-Based Machine Learning Methods in SAS Viya - Sharad Saxena - 書籍 - SAS Institute - 9781954846630 - 2022年2月21日
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Tree-Based Machine Learning Methods in SAS Viya

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発送予定日 年7月9日 - 年7月27日
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Discover how to build decision trees using SAS Viya!

Tree-Based Machine Learning Methods in SAS Viya covers everything from using a single tree to more advanced bagging and boosting ensemble methods. The book includes discussions of tree-structured predictive models and the methodology for growing, pruning, and assessing decision trees, forests, and gradient boosted trees. Each chapter introduces a new data concern and then walks you through tweaking the modeling approach, modifying the properties, and changing the hyperparameters, thus building an effective tree-based machine learning model. Along the way, you will gain experience making decision trees, forests, and gradient boosted trees that work for you.

By the end of this book, you will know how to: build tree-structured models, including classification trees and regression trees. build tree-based ensemble models, including forest and gradient boosting. run isolation forest and Poisson and Tweedy gradient boosted regression tree models. implement open source in SAS and SAS in open source. use decision trees for exploratory data analysis, dimension reduction, and missing value imputation.

メディア 書籍     Paperback Book   (ソフトカバーで背表紙を接着した本)
リリース済み 2022年2月21日
ISBN13 9781954846630
出版社 SAS Institute
ページ数 364
寸法 190 × 234 × 19 mm   ·   625 g
言語 英語  

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