Description

Book Synopsis
WILEY-INTERSCIENCE PAPERBACK SERIES

The Wiley-Interscience Paperback Series consists of selected books that have been made more accessible to consumers in an effort to increase global appeal and general circulation. With these new unabridged softcover volumes, Wiley hopes to extend the lives of these works by making them available to future generations of statisticians, mathematicians, and scientists.

From the Reviews of A User's Guide to Principal Components

The book is aptly and correctly namedA User's Guide. It is the kind of book that a user at any level, novice or skilled practitioner, would want to have at hand for autotutorial, for refresher, or as a general-purpose guide through the maze of modern PCA.
Technometrics

I recommend A User's Guide to Principal Components to anyone who is running multivariate analyses, or who contemplates performing such analyses. Those who write their own software will find the book helpful in designing better programs

Table of Contents
Preface.

Introduction.

1. Getting Started.

2. PCA with More Than Two Variables.

3. Scaling of Data.

4. Inferential Procedures.

5. Putting It All Together—Hearing Loss I.

6. Operations with Group Data.

7. Vector Interpretation I : Simplifications and Inferential Techniques.

8. Vector Interpretation II: Rotation.

9. A Case History—Hearing Loss II.

10. Singular Value Decomposition: Multidimensional Scaling I.

11. Distance Models: Multidimensional Scaling II.

12. Linear Models I : Regression; PCA of Predictor Variables.

13. Linear Models II: Analysis of Variance; PCA of Response Variables.

14. Other Applications of PCA.

15. Flatland: Special Procedures for Two Dimensions.

16. Odds and Ends.

17. What is Factor Analysis Anyhow?

18. Other Competitors.

Conclusion.

Appendix A. Matrix Properties.

Appendix B. Matrix Algebra Associated with Principal Component Analysis.

Appendix C. Computational Methods.

Appendix D. A Directory of Symbols and Definitions for PCA.

Appendix E. Some Classic Examples.

Appendix F. Data Sets Used in This Book.

Appendix G. Tables.

Bibliography.

Author Index.

Subject Index.

A Users Guide to Principal Components

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    A Paperback / softback by J. Edward Jackson

      Trusted by thousands of customers. See 2,385+ Customer Reviews

      View other formats and editions of A Users Guide to Principal Components by J. Edward Jackson

      Publisher: John Wiley & Sons Inc
      Publication Date: 05/09/2003
      ISBN13: 9780471471349, 978-0471471349
      ISBN10: 0471471348
      Also in:
      Mathematics

      Description

      Book Synopsis
      WILEY-INTERSCIENCE PAPERBACK SERIES

      The Wiley-Interscience Paperback Series consists of selected books that have been made more accessible to consumers in an effort to increase global appeal and general circulation. With these new unabridged softcover volumes, Wiley hopes to extend the lives of these works by making them available to future generations of statisticians, mathematicians, and scientists.

      From the Reviews of A User's Guide to Principal Components

      The book is aptly and correctly namedA User's Guide. It is the kind of book that a user at any level, novice or skilled practitioner, would want to have at hand for autotutorial, for refresher, or as a general-purpose guide through the maze of modern PCA.
      Technometrics

      I recommend A User's Guide to Principal Components to anyone who is running multivariate analyses, or who contemplates performing such analyses. Those who write their own software will find the book helpful in designing better programs

      Table of Contents
      Preface.

      Introduction.

      1. Getting Started.

      2. PCA with More Than Two Variables.

      3. Scaling of Data.

      4. Inferential Procedures.

      5. Putting It All Together—Hearing Loss I.

      6. Operations with Group Data.

      7. Vector Interpretation I : Simplifications and Inferential Techniques.

      8. Vector Interpretation II: Rotation.

      9. A Case History—Hearing Loss II.

      10. Singular Value Decomposition: Multidimensional Scaling I.

      11. Distance Models: Multidimensional Scaling II.

      12. Linear Models I : Regression; PCA of Predictor Variables.

      13. Linear Models II: Analysis of Variance; PCA of Response Variables.

      14. Other Applications of PCA.

      15. Flatland: Special Procedures for Two Dimensions.

      16. Odds and Ends.

      17. What is Factor Analysis Anyhow?

      18. Other Competitors.

      Conclusion.

      Appendix A. Matrix Properties.

      Appendix B. Matrix Algebra Associated with Principal Component Analysis.

      Appendix C. Computational Methods.

      Appendix D. A Directory of Symbols and Definitions for PCA.

      Appendix E. Some Classic Examples.

      Appendix F. Data Sets Used in This Book.

      Appendix G. Tables.

      Bibliography.

      Author Index.

      Subject Index.

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