Machine Learning: Modeling Data Locally and Globally

"Machine Learning - Modeling Data Locally and Globally" presents a novel and unified theory that tries to seamlessly integrate different algorithms. Specifically, the book distinguishes the inner nature of machine learning algorithms as either 'local learning' or 'global lea...

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Main Authors: Huang, Kaizhu, Yang, Haiqin, King, Irwin, Lyu, Michael
Format: Book
Language:English
Published: Springer 2017
Subjects:
Online Access:http://repository.vnu.edu.vn/handle/VNU_123/25646
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Institution: Vietnam National University, Hanoi
Language: English
id oai:112.137.131.14:VNU_123-25646
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spelling oai:112.137.131.14:VNU_123-256462020-07-17T03:29:39Z Machine Learning: Modeling Data Locally and Globally Huang, Kaizhu Yang, Haiqin King, Irwin Lyu, Michael Computer Science Modeling Data Globally 006.31 "Machine Learning - Modeling Data Locally and Globally" presents a novel and unified theory that tries to seamlessly integrate different algorithms. Specifically, the book distinguishes the inner nature of machine learning algorithms as either 'local learning' or 'global learning'. This theory not only connects previous machine learning methods, or serves as roadmap in various models, but - more importantly - it also motivates a theory that can learn from data both locally and globally. This would help the researchers gain a deeper insight and comprehensive understanding of the techniques in this field. The book reviews current topics,new theories and applications. Kaizhu Huang was a researcher at the Fujitsu Research and Development Center and is currently a research fellow in the Chinese University of Hong Kong. Haiqin Yang leads the image processing group at HiSilicon Technologies. Irwin King and Michael R. Lyu are professors at the Computer Science and Engineering department of the Chinese University of Hong Kong. 2017-04-10T07:53:02Z 2017-04-10T07:53:02Z 2008 Book 978-3-540-79451-6 http://repository.vnu.edu.vn/handle/VNU_123/25646 en 173 p. application/pdf Springer
institution Vietnam National University, Hanoi
building VNU Library & Information Center
country Vietnam
collection VNU Digital Repository
language English
topic Computer Science
Modeling Data
Globally
006.31
spellingShingle Computer Science
Modeling Data
Globally
006.31
Huang, Kaizhu
Yang, Haiqin
King, Irwin
Lyu, Michael
Machine Learning: Modeling Data Locally and Globally
description "Machine Learning - Modeling Data Locally and Globally" presents a novel and unified theory that tries to seamlessly integrate different algorithms. Specifically, the book distinguishes the inner nature of machine learning algorithms as either 'local learning' or 'global learning'. This theory not only connects previous machine learning methods, or serves as roadmap in various models, but - more importantly - it also motivates a theory that can learn from data both locally and globally. This would help the researchers gain a deeper insight and comprehensive understanding of the techniques in this field. The book reviews current topics,new theories and applications. Kaizhu Huang was a researcher at the Fujitsu Research and Development Center and is currently a research fellow in the Chinese University of Hong Kong. Haiqin Yang leads the image processing group at HiSilicon Technologies. Irwin King and Michael R. Lyu are professors at the Computer Science and Engineering department of the Chinese University of Hong Kong.
format Book
author Huang, Kaizhu
Yang, Haiqin
King, Irwin
Lyu, Michael
author_facet Huang, Kaizhu
Yang, Haiqin
King, Irwin
Lyu, Michael
author_sort Huang, Kaizhu
title Machine Learning: Modeling Data Locally and Globally
title_short Machine Learning: Modeling Data Locally and Globally
title_full Machine Learning: Modeling Data Locally and Globally
title_fullStr Machine Learning: Modeling Data Locally and Globally
title_full_unstemmed Machine Learning: Modeling Data Locally and Globally
title_sort machine learning: modeling data locally and globally
publisher Springer
publishDate 2017
url http://repository.vnu.edu.vn/handle/VNU_123/25646
_version_ 1680967537436655616