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Graph-Based Clustering and Data Visualization Algorithms

Produktform: E-Buch Text Elektronisches Buch in proprietärem

This work presents a data visualization technique that combines graph-based topology representation and dimensionality reduction methods to visualize the intrinsic data structure in a low-dimensional vector space. The application of graphs in clustering and visualization has several advantages. A graph of important edges (where edges characterize relations and weights represent similarities or distances) provides a compact representation of the entire complex data set. This text describes clustering and visualization methods that are able to utilize information hidden in these graphs, based on the synergistic combination of clustering, graph-theory, neural networks, data visualization, dimensionality reduction, fuzzy methods, and topology learning. The work contains numerous examples to aid in the understanding and implementation of the proposed algorithms, supported by a MATLAB toolbox available at an associated website.weiterlesen

Dieser Artikel gehört zu den folgenden Serien

Elektronisches Format: PDF

Sprache(n): Englisch

ISBN: 978-1-4471-5158-6 / 978-1447151586 / 9781447151586

Verlag: Springer London

Erscheinungsdatum: 24.05.2013

Seiten: 110

Autor(en): János Abonyi, Ágnes Vathy-Fogarassy

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