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2019 | OriginalPaper | Chapter

3. Multiview Subspace Learning

Authors : Shiliang Sun, Liang Mao, Ziang Dong, Lidan Wu

Published in: Multiview Machine Learning

Publisher: Springer Singapore

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Abstract

In multiview settings, observations from different views are assumed to share the same subspace. The abundance of views can be utilized to better explore the subspace. In this chapter, we consider two different kinds of multiview subspace learning problems. The first one contains the general unsupervised multiview subspace learning problems. We focus on canonical correlation analysis as well as some of its extensions. The second one contains the supervised multiview subspace learning problems, i.e., there exists available label information. In this case, representations more suitable for the on-hand task can be obtained by utilizing the label information. We also briefly introduce some other methods at the end of this chapter.

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Metadata
Title
Multiview Subspace Learning
Authors
Shiliang Sun
Liang Mao
Ziang Dong
Lidan Wu
Copyright Year
2019
Publisher
Springer Singapore
DOI
https://doi.org/10.1007/978-981-13-3029-2_3

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