Description

Book Synopsis
Statistical Factor Analysis and Related Methods Theory andApplications In bridging the gap between the mathematical andstatistical theory of factor analysis, this new work represents thefirst unified treatment of the theory and practice of factoranalysis and latent variable models. It focuses on such areasas:
* The classical principal components model and sample-populationinference
* Several extensions and modifications of principal components,including Q and three-mode analysis and principal components in thecomplex domain
* Maximum likelihood and weighted factor models, factoridentification, factor rotation, and the estimation of factorscores
* The use of factor models in conjunction with various types ofdata including time series, spatial data, rank orders, and nominalvariable
* Applications of factor models to the estimation of functionalforms and to least squares of regression estimators

Table of Contents
Preliminaries.

Matrixes, Vector Spaces.

The Ordinary Principal Components Model.

Statistical Testing of the Ordinary Principal ComponentsModel.

Extensions of the Ordinary Principal Components Model.

Factor Analysis.

Factor Analysis of Correlated Observations.

Ordinal and Nominal Random Data.

Other Models for Discrete Data.

Factor Analysis and Least Squares Regression.

Exercises.

References.

Index.

Statistical Factor Analysis and Related Methods

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    A Hardback by Alexander T. Basilevsky

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      View other formats and editions of Statistical Factor Analysis and Related Methods by Alexander T. Basilevsky

      Publisher: John Wiley & Sons Inc
      Publication Date: Publication Date: 28/06/1994
      ISBN13: 9780471570820, 978-0471570820
      ISBN10: 0471570826

      Description

      Book Synopsis
      Statistical Factor Analysis and Related Methods Theory andApplications In bridging the gap between the mathematical andstatistical theory of factor analysis, this new work represents thefirst unified treatment of the theory and practice of factoranalysis and latent variable models. It focuses on such areasas:
      * The classical principal components model and sample-populationinference
      * Several extensions and modifications of principal components,including Q and three-mode analysis and principal components in thecomplex domain
      * Maximum likelihood and weighted factor models, factoridentification, factor rotation, and the estimation of factorscores
      * The use of factor models in conjunction with various types ofdata including time series, spatial data, rank orders, and nominalvariable
      * Applications of factor models to the estimation of functionalforms and to least squares of regression estimators

      Table of Contents
      Preliminaries.

      Matrixes, Vector Spaces.

      The Ordinary Principal Components Model.

      Statistical Testing of the Ordinary Principal ComponentsModel.

      Extensions of the Ordinary Principal Components Model.

      Factor Analysis.

      Factor Analysis of Correlated Observations.

      Ordinal and Nominal Random Data.

      Other Models for Discrete Data.

      Factor Analysis and Least Squares Regression.

      Exercises.

      References.

      Index.

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