Finite Mixture Models
eBook - PDF

Finite Mixture Models

  1. English
  2. PDF
  3. Available on iOS & Android
eBook - PDF

Finite Mixture Models

About this book

An up-to-date, comprehensive account of major issues in finite mixture modeling
This volume provides an up-to-date account of the theory and applications of modeling via finite mixture distributions. With an emphasis on the applications of mixture models in both mainstream analysis and other areas such as unsupervised pattern recognition, speech recognition, and medical imaging, the book describes the formulations of the finite mixture approach, details its methodology, discusses aspects of its implementation, and illustrates its application in many common statistical contexts.
Major issues discussed in this book include identifiability problems, actual fitting of finite mixtures through use of the EM algorithm, properties of the maximum likelihood estimators so obtained, assessment of the number of components to be used in the mixture, and the applicability of asymptotic theory in providing a basis for the solutions to some of these problems. The author also considers how the EM algorithm can be scaled to handle the fitting of mixture models to very large databases, as in data mining applications. This comprehensive, practical guide:
* Provides more than 800 references-40% published since 1995
* Includes an appendix listing available mixture software
* Links statistical literature with machine learning and pattern recognition literature
* Contains more than 100 helpful graphs, charts, and tables
Finite Mixture Models is an important resource for both applied and theoretical statisticians as well as for researchers in the many areas in which finite mixture models can be used to analyze data.

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Yes, you can access Finite Mixture Models by Geoffrey J. McLachlan,David Peel in PDF and/or ePUB format, as well as other popular books in Mathematics & Probability & Statistics. We have over one million books available in our catalogue for you to explore.

Information

Table of contents

  1. Contents
  2. Preface
  3. 1 General Introduction
  4. 2 ML Fitting of Mixture Models
  5. 3 Multivariate Normal Mixtures
  6. 4 Bayesian Approach to Mixture Analysis
  7. 5 Mixtures with Nonnormal Components
  8. 6 Assessing the Number of Components in Mixture Models
  9. 7 Multivariate t Mixtures
  10. 8 Mixtures of Factor Analyzers
  11. 9 Fitting Mixture Models to Binned Data
  12. 10 Mixture Models for Failure-Time Data
  13. 11 Mixture Analysis of Directional Data
  14. 12 Variants of the EM Algorithm for Large Databases
  15. 13 Hidden Markov Models
  16. Appendix: Mixture Software
  17. References
  18. Author Index
  19. Subject Index