Algorithms for Fuzzy Clustering: Methods in c-Means Clustering with Applications: Studies in Fuzziness and Soft Computing, cartea 229
Autor Sadaaki Miyamoto, Hidetomo Ichihashi, Katsuhiro Hondaen Limba Engleză Hardback – 15 apr 2008
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Specificații
ISBN-13: 9783540787365
ISBN-10: 3540787364
Pagini: 260
Ilustrații: XI, 247 p.
Dimensiuni: 156 x 234 x 20 mm
Greutate: 0.54 kg
Ediția:2008
Editura: Springer Berlin, Heidelberg
Colecția Springer
Seria Studies in Fuzziness and Soft Computing
Locul publicării:Berlin, Heidelberg, Germany
ISBN-10: 3540787364
Pagini: 260
Ilustrații: XI, 247 p.
Dimensiuni: 156 x 234 x 20 mm
Greutate: 0.54 kg
Ediția:2008
Editura: Springer Berlin, Heidelberg
Colecția Springer
Seria Studies in Fuzziness and Soft Computing
Locul publicării:Berlin, Heidelberg, Germany
Public țintă
ResearchCuprins
BasicMethods for c-Means Clustering.- Variations and Generalizations - I.- Variations and Generalizations - II.- Miscellanea.- Application to Classifier Design.- Fuzzy Clustering and Probabilistic PCA Model.- Local Multivariate Analysis Based on Fuzzy Clustering.- Extended Algorithms for Local Multivariate Analysis.
Textul de pe ultima copertă
The main subject of this book is the fuzzy c-means proposed by Dunn and Bezdek and their variations including recent studies. A main reason why we concentrate on fuzzy c-means is that most methodology and application studies in fuzzy clustering use fuzzy c-means, and hence fuzzy c-means should be considered to be a major technique of clustering in general, regardless whether one is interested in fuzzy methods or not. Unlike most studies in fuzzy c-means, what we emphasize in this book is a family of algorithms using entropy or entropy-regularized methods which are less known, but we consider the entropy-based method to be another useful method of fuzzy c-means. Throughout this book one of our intentions is to uncover theoretical and methodological differences between the Dunn and Bezdek traditional method and the entropy-based method. We do note claim that the entropy-based method is better than the traditional method, but we believe that the methods of fuzzy c-means become complete by adding the entropy-based method to the method by Dunn and Bezdek, since we can observe natures of the both methods more deeply by contrasting these two.
Caracteristici
Presents recent advances in algorithms for fuzzy clustering