Fuzzy Cluster Analysis
★★★★★
★★★★★
Regular price
€226.86
A01=Frank Höppner
A01=Frank Klawonn
A01=Rudolf Kruse
A01=Thomas Runkler
algorithms
applications
Author_Frank Höppner
Author_Frank Klawonn
Author_Rudolf Kruse
Author_Thomas Runkler
Category=PBCH
Category=PBWX
Category=UNC
Category=UYAM
classification
detail
discussion
eq_computing
eq_isMigrated=1
eq_non-fiction
examples
features
fuzzy
gustafsonkessel
ifthen
illustrated
inducing
introduction
method
methods
nonalternating
optimization
powerful
sections
selfcontained
solid
Product details
- ISBN 9780471988649
- Weight: 595g
- Dimensions: 158 x 235mm
- Publication Date: 23 Apr 1999
- Publisher: John Wiley & Sons Inc
- Publication City/Country: US
- Product Form: Hardback
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Provides a timely and important introduction to fuzzy cluster analysis, its methods and areas of application, systematically describing different fuzzy clustering techniques so the user may choose methods appropriate for his problem. It provides a very thorough overview of the subject and covers classification, image recognition, data analysis and rule generation. The application examples are highly relevant and illustrative, and the use of the techniques are justified and well thought-out.
Features include:
* Sections on inducing fuzzy if-then rules by fuzzy clustering and non-alternating optimization fuzzy clustering algorithms
* Discussion of solid fuzzy clustering techniques like the fuzzy c-means, the Gustafson-Kessel and the Gath-and-Geva algorithm for classification problems
* Focus on linear and shell clustering techniques used for detecting contours in image analysis
* Accompanying software and data sets pertaining to the examples presented, enabling the reader to learn through experimentation
* Examination of the difficulties involved in evaluating the results of fuzzy cluster analysis and of determining the number of clusters with analysis of global and local validity measures
This is one of the most comprehensive books on fuzzy clustering and will be welcomed by computer scientists, engineers and mathematicians in industry and research who are concerned with different methods, data analysis, pattern recognition or image processing. It will also give graduate students in computer science, mathematics or statistics a valuable overview.
Features include:
* Sections on inducing fuzzy if-then rules by fuzzy clustering and non-alternating optimization fuzzy clustering algorithms
* Discussion of solid fuzzy clustering techniques like the fuzzy c-means, the Gustafson-Kessel and the Gath-and-Geva algorithm for classification problems
* Focus on linear and shell clustering techniques used for detecting contours in image analysis
* Accompanying software and data sets pertaining to the examples presented, enabling the reader to learn through experimentation
* Examination of the difficulties involved in evaluating the results of fuzzy cluster analysis and of determining the number of clusters with analysis of global and local validity measures
This is one of the most comprehensive books on fuzzy clustering and will be welcomed by computer scientists, engineers and mathematicians in industry and research who are concerned with different methods, data analysis, pattern recognition or image processing. It will also give graduate students in computer science, mathematics or statistics a valuable overview.
Frank Höppner and Frank Klawonn are the authors of Fuzzy Cluster Analysis: Methods for Classification, Data Analysis and Image Recognition, published by Wiley.
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