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Ensemble methods

by Zhou, Zhi-Hua Ph. D.

COMPUTERS / Machine TheoryCOMPUTERS / Database Management / Data MiningBUSINESS & ECONOMICS / StatisticsSet theoryMultiple comparisons (Statistics)
0.0
Open Library
Open Library

About this book

"This comprehensive book presents an in-depth and systematic introduction to ensemble methods for researchers in machine learning, data mining, and related areas. It helps readers solve modem problems in machine learning using these methods. The author covers the spectrum of research in ensemble methods, including such famous methods as boosting, bagging, and rainforest, along with current directions and methods not sufficiently addressed in other books. Chapters explore cutting-edge topics, such as semi-supervised ensembles, cluster ensembles, and comprehensibility, as well as successful applications"--

Themes & subjects

COMPUTERS / Machine TheoryCOMPUTERS / Database Management / Data MiningBUSINESS & ECONOMICS / StatisticsSet theoryMultiple comparisons (Statistics)Mathematical analysis

Author

Zhou, Zhi-Hua Ph. D.

Pages

222

Read time

≈ 6h

Editions

1

Language

English

Publisher

Taylor & Francis

ISBN

9781439830031

Where to buy

TR
Amazon Bookshop

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