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Foundations and Methods in Combinatorial and Statistical Data Analysis and Clustering Softcover reprint of the original 1st ed. 2016 [Pehme köide]

  • Formaat: Paperback / softback, 647 pages, kõrgus x laius: 235x155 mm, kaal: 1015 g, 54 Illustrations, black and white; XXIV, 647 p. 54 illus., 1 Paperback / softback
  • Sari: Advanced Information and Knowledge Processing
  • Ilmumisaeg: 14-Apr-2018
  • Kirjastus: Springer London Ltd
  • ISBN-10: 1447173929
  • ISBN-13: 9781447173922
Teised raamatud teemal:
  • Pehme köide
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  • Formaat: Paperback / softback, 647 pages, kõrgus x laius: 235x155 mm, kaal: 1015 g, 54 Illustrations, black and white; XXIV, 647 p. 54 illus., 1 Paperback / softback
  • Sari: Advanced Information and Knowledge Processing
  • Ilmumisaeg: 14-Apr-2018
  • Kirjastus: Springer London Ltd
  • ISBN-10: 1447173929
  • ISBN-13: 9781447173922
Teised raamatud teemal:
This book offers an original and broad exploration of the fundamental methods in Clustering and Combinatorial Data Analysis, presenting new formulations and ideas within this very active field.





With extensive introductions, formal and mathematical developments and real case studies, this book provides readers with a deeper understanding of the mutual relationships between these methods, which are clearly expressed with respect to three facets: logical, combinatorial  and  statistical.





Using relational mathematical representation, all types of data structures can be handled in precise and unified ways which the author highlights in three stages:









Clustering a set of descriptive attributes Clustering a set of objects or a set of object categories Establishing correspondence between these two dual clusterings

Tools for interpreting the reasons of a given cluster or clustering are also included.





Foundations and Methods in Combinatorial and Statistical Data Analysis and Clustering will be a valuable resource for students and researchers who are interested in the areas of Data Analysis, Clustering, Data Mining and Knowledge Discovery.

Arvustused

This book provides a synthetic and systematic presentation of clustering, combinatorial, and statistical data analysis. the presentation is interesting and original. Keeping a smart balance between theoretical concepts and practical issues, the book is addressed to students and researchers interested in data mining, data analysis, and clustering. (Florin Gorunescu, zbMATH 1338.62012, 2016)

Preface.- On Some Facets of the Partition Set of a Finite Set.- Two
Methods of Non-hierarchical Clustering.- Structure and Mathematical
Representation of Data.- Ordinal and Metrical Analysis of the Resemblance
Notion.- Comparing Attributes by a Probabilistic and Statistical Association
I.- Comparing Attributes by a Probabilistic and Statistical Association
II.- Comparing Objects or Categories Described by Attributes.- The Notion of
Natural Class, Tools for its Interpretation. The Classifiability Concept.-
Quality Measures in Clustering.- Building a Classification Tree.- Applying
the LLA Method to Real Data.- Conclusion and Thoughts for Future Works