The Geometry of Multivariate Statistics

This book PDF is perfect for those who love Psychology genre, written by Thomas D. Wickens and published by Psychology Press which was released on 25 February 2014 with total hardcover pages 216. You could read this book directly on your devices with pdf, epub and kindle format, check detail and related The Geometry of Multivariate Statistics books below.

The Geometry of Multivariate Statistics
Author : Thomas D. Wickens
File Size : 50,9 Mb
Publisher : Psychology Press
Language : English
Release Date : 25 February 2014
ISBN : 9781317780229
Pages : 216 pages
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The Geometry of Multivariate Statistics by Thomas D. Wickens Book PDF Summary

A traditional approach to developing multivariate statistical theory is algebraic. Sets of observations are represented by matrices, linear combinations are formed from these matrices by multiplying them by coefficient matrices, and useful statistics are found by imposing various criteria of optimization on these combinations. Matrix algebra is the vehicle for these calculations. A second approach is computational. Since many users find that they do not need to know the mathematical basis of the techniques as long as they have a way to transform data into results, the computation can be done by a package of computer programs that somebody else has written. An approach from this perspective emphasizes how the computer packages are used, and is usually coupled with rules that allow one to extract the most important numbers from the output and interpret them. Useful as both approaches are--particularly when combined--they can overlook an important aspect of multivariate analysis. To apply it correctly, one needs a way to conceptualize the multivariate relationships that exist among variables. This book is designed to help the reader develop a way of thinking about multivariate statistics, as well as to understand in a broader and more intuitive sense what the procedures do and how their results are interpreted. Presenting important procedures of multivariate statistical theory geometrically, the author hopes that this emphasis on the geometry will give the reader a coherent picture into which all the multivariate techniques fit.

The Geometry of Multivariate Statistics

A traditional approach to developing multivariate statistical theory is algebraic. Sets of observations are represented by matrices, linear combinations are formed from these matrices by multiplying them by coefficient matrices, and useful statistics are found by imposing various criteria of optimization on these combinations. Matrix algebra is the vehicle for

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Data Depth

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Mathematical Tools for Applied Multivariate Analysis provides information pertinent to the aspects of transformational geometry, matrix algebra, and the calculus that are most relevant for the study of multivariate analysis. This book discusses the mathematical foundations of applied multivariate analysis. Organized into six chapters, this book begins with an overview

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