Density Ratio Estimation in Machine Learning (Paperback)
 
作者: Masashi Sugiyama 
分類: Machine learning ,
Pattern recognition  
書城編號: 1471826


售價: $504.00

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出版社: Cambridge University Press
出版日期: 2018/03/29
尺寸: 234x156x18mm
重量: 481 grams
ISBN: 9781108461733

商品簡介
Machine learning is an interdisciplinary field of science and engineering that studies mathematical theories and practical applications of systems that learn. This book introduces theories, methods, and applications of density ratio estimation, which is a newly emerging paradigm in the machine learning community. Various machine learning problems such as non-stationarity adaptation, outlier detection, dimensionality reduction, independent component analysis, clustering, classification, and conditional density estimation can be systematically solved via the estimation of probability density ratios. The authors offer a comprehensive introduction of various density ratio estimators including methods via density estimation, moment matching, probabilistic classification, density fitting, and density ratio fitting as well as describing how these can be applied to machine learning. The book also provides mathematical theories for density ratio estimation including parametric and non-parametric convergence analysis and numerical stability analysis to complete the first and definitive treatment of the entire framework of density ratio estimation in machine learning.
Masashi Sugiyama 作者作品表

Density Ratio Estimation in Machine Learning (Paperback)

eBook: Introduction to Statistical Machine Learning (DRM PDF)

eBook: Introduction to Statistical Machine Learning (DRM EPUB)

Introduction to Statistical Machine Learning (Paperback)

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