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Features:
· An in-depth presentation of K-means partitioning including a corresponding Pythagorean decomposition of the data scatter.
· Advice regarding such issues as clustering of categorical and mixed scale data, similarity and network data, interpretation aids, anomalous clusters, the number of clusters, etc.
· Thorough attention to data-driven modelling including a number of mathematically stated relations between statistical and geometrical concepts including those between goodness-of-fit criteria for decision trees and data standardization, similarity and consensus clustering, modularity clustering and uniform partitioning.
New edition highlights:
· Inclusion of ranking issues such as Google PageRank, linear stratification and tied rankings median, consensus clustering, semi-average clustering, one-cluster clustering
· Restructured to make the logics more straightforward and sections self-contained
Core Data Analysis: Summarization, Correlation and Visualization is aimed at those who are eager to participate in developing the field as well as appealing to novices and practitioners.
Features:
· An in-depth presentation of K-means partitioning including a corresponding Pythagorean decomposition of the data scatter.
· Advice regarding such issues as clustering of categorical and mixed scale data, similarity and network data, interpretation aids, anomalous clusters, the number of clusters, etc.
· Thorough attention to data-driven modelling including a number of mathematically stated relations between statistical and geometrical concepts including those between goodness-of-fit criteria for decision trees and data standardization, similarity and consensus clustering, modularity clustering and uniform partitioning.
New edition highlights:
· Inclusion of ranking issues such as Google PageRank, linear stratification and tied rankings median, consensus clustering, semi-average clustering, one-cluster clustering
· Restructured to make the logics more straightforward and sections self-contained
Core Data Analysis: Summarization, Correlation and Visualization is aimed at those who are eager to participate in developing the field as well as appealing to novices and practitioners.
He develops methods for clustering and interpretation of complex data within the "data recovery" perspective. Currently these approaches are being extended to automation of text analysis problems including the development and use of hierarchical ontologies. He has published a hundred refereed papers and a dozen books, of which the latest are: "Clustering: A Data Recovery Approach" (Chapman and Hall/CRC Press, 2012) and a textbook "Introductory Data Analysis" (In Russian, URAIT Publishers, Moscow, 2016).
Focuses on the encoder-decoder interpretation of summarization methods, such as Principal Component Analysis and K-means clustering
Supplies an in-depth description of K-means partitioning including a data-driven mathematical theory
Covers novel topics such as Google PageRank ranking and Consensus clustering as interlaced within the general framework
Includes a multitude of worked examples, case studies and questions (with answers)
Topics in Data Analysis Substance.- Quantitative Summarization.- Learning Correlations.- Core Partitioning: K-Means and Similarity Clustering.- Divisive and Separate Cluster Structures.- Appendix. Basic Math and Code.- Index.
Erscheinungsjahr: | 2019 |
---|---|
Genre: | Informatik, Mathematik, Medizin, Naturwissenschaften, Technik |
Rubrik: | Naturwissenschaften & Technik |
Medium: | Taschenbuch |
Inhalt: |
xv
524 S. 107 s/w Illustr. 80 farbige Illustr. 524 p. 187 illus. 80 illus. in color. |
ISBN-13: | 9783030002701 |
ISBN-10: | 3030002705 |
Sprache: | Englisch |
Herstellernummer: | 978-3-030-00270-1 |
Einband: | Kartoniert / Broschiert |
Autor: | Mirkin, Boris |
Auflage: | Second Edition 2019 |
Hersteller: |
Springer International Publishing
Springer International Publishing AG |
Verantwortliche Person für die EU: | Springer Verlag GmbH, Tiergartenstr. 17, D-69121 Heidelberg, juergen.hartmann@springer.com |
Maße: | 235 x 155 x 29 mm |
Von/Mit: | Boris Mirkin |
Erscheinungsdatum: | 18.04.2019 |
Gewicht: | 0,809 kg |
He develops methods for clustering and interpretation of complex data within the "data recovery" perspective. Currently these approaches are being extended to automation of text analysis problems including the development and use of hierarchical ontologies. He has published a hundred refereed papers and a dozen books, of which the latest are: "Clustering: A Data Recovery Approach" (Chapman and Hall/CRC Press, 2012) and a textbook "Introductory Data Analysis" (In Russian, URAIT Publishers, Moscow, 2016).
Focuses on the encoder-decoder interpretation of summarization methods, such as Principal Component Analysis and K-means clustering
Supplies an in-depth description of K-means partitioning including a data-driven mathematical theory
Covers novel topics such as Google PageRank ranking and Consensus clustering as interlaced within the general framework
Includes a multitude of worked examples, case studies and questions (with answers)
Topics in Data Analysis Substance.- Quantitative Summarization.- Learning Correlations.- Core Partitioning: K-Means and Similarity Clustering.- Divisive and Separate Cluster Structures.- Appendix. Basic Math and Code.- Index.
Erscheinungsjahr: | 2019 |
---|---|
Genre: | Informatik, Mathematik, Medizin, Naturwissenschaften, Technik |
Rubrik: | Naturwissenschaften & Technik |
Medium: | Taschenbuch |
Inhalt: |
xv
524 S. 107 s/w Illustr. 80 farbige Illustr. 524 p. 187 illus. 80 illus. in color. |
ISBN-13: | 9783030002701 |
ISBN-10: | 3030002705 |
Sprache: | Englisch |
Herstellernummer: | 978-3-030-00270-1 |
Einband: | Kartoniert / Broschiert |
Autor: | Mirkin, Boris |
Auflage: | Second Edition 2019 |
Hersteller: |
Springer International Publishing
Springer International Publishing AG |
Verantwortliche Person für die EU: | Springer Verlag GmbH, Tiergartenstr. 17, D-69121 Heidelberg, juergen.hartmann@springer.com |
Maße: | 235 x 155 x 29 mm |
Von/Mit: | Boris Mirkin |
Erscheinungsdatum: | 18.04.2019 |
Gewicht: | 0,809 kg |