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Books > Computing & IT > Applications of computing > Databases > Data mining

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Advances in K-means Clustering - A Data Mining Thinking (Paperback, 2012 ed.) Loot Price: R2,760
Discovery Miles 27 600
Advances in K-means Clustering - A Data Mining Thinking (Paperback, 2012 ed.): Junjie Wu

Advances in K-means Clustering - A Data Mining Thinking (Paperback, 2012 ed.)

Junjie Wu

Series: Springer Theses

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Loot Price R2,760 Discovery Miles 27 600 | Repayment Terms: R259 pm x 12*

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Nearly everyone knows K-means algorithm in the fields of data mining and business intelligence. But the ever-emerging data with extremely complicated characteristics bring new challenges to this "old" algorithm. This book addresses these challenges and makes novel contributions in establishing theoretical frameworks for K-means distances and K-means based consensus clustering, identifying the "dangerous" uniform effect and zero-value dilemma of K-means, adapting right measures for cluster validity, and integrating K-means with SVMs for rare class analysis. This book not only enriches the clustering and optimization theories, but also provides good guidance for the practical use of K-means, especially for important tasks such as network intrusion detection and credit fraud prediction. The thesis on which this book is based has won the "2010 National Excellent Doctoral Dissertation Award", the highest honor for not more than 100 PhD theses per year in China.

General

Imprint: Springer-Verlag
Country of origin: Germany
Series: Springer Theses
Release date: August 2014
First published: 2012
Authors: Junjie Wu
Dimensions: 235 x 155 x 11mm (L x W x T)
Format: Paperback
Pages: 180
Edition: 2012 ed.
ISBN-13: 978-3-642-44757-0
Categories: Books > Science & Mathematics > Mathematics > Probability & statistics
Books > Business & Economics > Business & management > Business mathematics & systems > General
Books > Computing & IT > Applications of computing > Databases > Data mining
LSN: 3-642-44757-0
Barcode: 9783642447570

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