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Advances in K-means Clustering - A Data Mining Thinking (Paperback, 2012 ed.)
Loot Price: R2,760
Discovery Miles 27 600
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Advances in K-means Clustering - A Data Mining Thinking (Paperback, 2012 ed.)
Series: Springer Theses
Expected to ship within 10 - 15 working days
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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.
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