Robust Data Clustering

Robust Data Clustering

EnglishPaperback / softbackPrint on demand
Kaur, Prabhjot
LAP Lambert Academic Publishing
EAN: 9783659323775
Print on demand
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Detailed information

Robust clustering techniques are an effective way of clustering data in such a form that effect of outliers on the data clusters is minimized. In this book six data clustering techniques are reviewed and analysed based upon the robust characteristics of clustering. Six data clustering algorithms namely: Fuzzy C-Means (FCM), Possibilistic C-Means (PCM), Possibilistic Fuzzy C-means (PFCM), Credibilistic Fuzzy C-means (CFCM), Noise Clustering (NC) and Density Oriented Fuzzy C-Means (DOFCM) are analysed based upon synthetic noisy data-sets and standard data-sets like DUNN and Bensaid.
EAN 9783659323775
ISBN 3659323772
Binding Paperback / softback
Publisher LAP Lambert Academic Publishing
Publication date January 24, 2013
Pages 88
Language English
Dimensions 229 x 152 x 5
Readership General
Authors Goel, Megha; Kaur, Prabhjot; Sharma, Shashank
Manufacturer information
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