Description

Book Synopsis

This is a great overview of the field of model-based clustering and classification by one of its leading developers. McNicholas provides a resource that I am certain will be used by researchers in statistics and related disciplines for quite some time. The discussion of mixtures with heavy tails and asymmetric distributions will place this text as the authoritative, modern reference in the mixture modeling literature. (Douglas Steinley, University of Missouri)

Mixture Model-Based Classification is the first monograph devoted to mixture model-based approaches to clustering and classification. This is both a book for established researchers and newcomers to the field. A history of mixture models as a tool for classification is provided and Gaussian mixtures are considered extensively, including mixtures of factor analyzers and other approaches for high-dimensional data. Non-Gaussian mixtures are considered, from mixtures with components that parameterize skewness and/or

Trade Review

"This Monograph, “Mixture Model-Based Classification” is an excellent book, highly relevant to every statistician working with classification problems."
~International Society for Clinical Biostatistics
"This monograph is an extensive introduction of mixture models with applications in classification and clustering. . . The author did good work by organizing the materials in a very natural way as well as presenting methods and algorithms in great detail. Moreover, many case studies help the reader understand and appreciate the methodologies presented."
~Journal of the American Statistical Association

"I would recommend this book to anyone interested in learning about application of mixture models to classification problems."
~The International Biometric Society



Table of Contents

Mixture Model-Based Classification

Mixture ModelBased Classification

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    A Hardback by Paul D. McNicholas

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      View other formats and editions of Mixture ModelBased Classification by Paul D. McNicholas

      Publisher: CRC Press
      Publication Date: 8/19/2016 12:00:00 AM
      ISBN13: 9781482225662, 978-1482225662
      ISBN10: 1482225662

      Description

      Book Synopsis

      This is a great overview of the field of model-based clustering and classification by one of its leading developers. McNicholas provides a resource that I am certain will be used by researchers in statistics and related disciplines for quite some time. The discussion of mixtures with heavy tails and asymmetric distributions will place this text as the authoritative, modern reference in the mixture modeling literature. (Douglas Steinley, University of Missouri)

      Mixture Model-Based Classification is the first monograph devoted to mixture model-based approaches to clustering and classification. This is both a book for established researchers and newcomers to the field. A history of mixture models as a tool for classification is provided and Gaussian mixtures are considered extensively, including mixtures of factor analyzers and other approaches for high-dimensional data. Non-Gaussian mixtures are considered, from mixtures with components that parameterize skewness and/or

      Trade Review

      "This Monograph, “Mixture Model-Based Classification” is an excellent book, highly relevant to every statistician working with classification problems."
      ~International Society for Clinical Biostatistics
      "This monograph is an extensive introduction of mixture models with applications in classification and clustering. . . The author did good work by organizing the materials in a very natural way as well as presenting methods and algorithms in great detail. Moreover, many case studies help the reader understand and appreciate the methodologies presented."
      ~Journal of the American Statistical Association

      "I would recommend this book to anyone interested in learning about application of mixture models to classification problems."
      ~The International Biometric Society



      Table of Contents

      Mixture Model-Based Classification

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