Graph Embedding for Pattern Analysis

Graph Embedding for Pattern Analysis

Author
Muhammad Muzzamil Luqman, Jean-Yves Ramel (auth.), Yun Fu, Yunqian Ma (eds.)
Publisher
Springer-Verlag New York
Language
English
Edition
1
Year
2013
Page
260
ISBN
9781461444565,9781461444572
File Type
pdf
File Size
7.3 MiB

Graph Embedding for Pattern Recognition covers theory methods, computation, and applications widely used in statistics, machine learning, image processing, and computer vision. This book presents the latest advances in graph embedding theories, such as nonlinear manifold graph, linearization method, graph based subspace analysis, L1 graph, hypergraph, undirected graph, and graph in vector spaces. Real-world applications of these theories are spanned broadly in dimensionality reduction, subspace learning, manifold learning, clustering, classification, and feature selection. A selective group of experts contribute to different chapters of this book which provides a comprehensive perspective of this field.

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