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Data clustering: theory, algorithms, and applications

Cluster analysis is an unsupervised process that divides a set of objects into homogeneous groups. This book starts with basic information on cluster analysis, including the classification of data and the corresponding similarity measures, followed by the presentation of over 50 clustering algorithm...

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Detalles Bibliográficos
Autores principales: Gan, Guojun, Ma, Chaoqun, Wu, Jianhong
Lenguaje:eng
Publicado: Society for Industrial and Applied Mathematics 2007
Materias:
Acceso en línea:http://cds.cern.ch/record/1560002
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author Gan, Guojun
Ma, Chaoqun
Wu, Jianhong
author_facet Gan, Guojun
Ma, Chaoqun
Wu, Jianhong
author_sort Gan, Guojun
collection CERN
description Cluster analysis is an unsupervised process that divides a set of objects into homogeneous groups. This book starts with basic information on cluster analysis, including the classification of data and the corresponding similarity measures, followed by the presentation of over 50 clustering algorithms in groups according to some specific baseline methodologies such as hierarchical, center-based, and search-based methods. As a result, readers and users can easily identify an appropriate algorithm for their applications and compare novel ideas with existing results. The book also provides examples of clustering applications to illustrate the advantages and shortcomings of different clustering architectures and algorithms. Application areas include pattern recognition, artificial intelligence, information technology, image processing, biology, psychology, and marketing. Readers also learn how to perform cluster analysis with the C/C++ and MATLAB® programming languages.
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spelling cern-15600022021-04-21T22:35:20Zhttp://cds.cern.ch/record/1560002engGan, GuojunMa, ChaoqunWu, JianhongData clustering: theory, algorithms, and applicationsMathematical Physics and MathematicsCluster analysis is an unsupervised process that divides a set of objects into homogeneous groups. This book starts with basic information on cluster analysis, including the classification of data and the corresponding similarity measures, followed by the presentation of over 50 clustering algorithms in groups according to some specific baseline methodologies such as hierarchical, center-based, and search-based methods. As a result, readers and users can easily identify an appropriate algorithm for their applications and compare novel ideas with existing results. The book also provides examples of clustering applications to illustrate the advantages and shortcomings of different clustering architectures and algorithms. Application areas include pattern recognition, artificial intelligence, information technology, image processing, biology, psychology, and marketing. Readers also learn how to perform cluster analysis with the C/C++ and MATLAB® programming languages.Society for Industrial and Applied Mathematicsoai:cds.cern.ch:15600022007
spellingShingle Mathematical Physics and Mathematics
Gan, Guojun
Ma, Chaoqun
Wu, Jianhong
Data clustering: theory, algorithms, and applications
title Data clustering: theory, algorithms, and applications
title_full Data clustering: theory, algorithms, and applications
title_fullStr Data clustering: theory, algorithms, and applications
title_full_unstemmed Data clustering: theory, algorithms, and applications
title_short Data clustering: theory, algorithms, and applications
title_sort data clustering: theory, algorithms, and applications
topic Mathematical Physics and Mathematics
url http://cds.cern.ch/record/1560002
work_keys_str_mv AT ganguojun dataclusteringtheoryalgorithmsandapplications
AT machaoqun dataclusteringtheoryalgorithmsandapplications
AT wujianhong dataclusteringtheoryalgorithmsandapplications