Matrix Algebra Useful for Statistics

Regular price €127.99

matrix algebra

A01=Andre I. Khuri
A01=Shayle R. Searle
Age Group_Uncategorized
Age Group_Uncategorized
applied illustrations
Author_Andre I. Khuri
Author_Shayle R. Searle
automatic-update
balanced linear models
Category1=Non-Fiction
Category=PBF
Category=PBT
COP=United States
Delivery_Delivery within 10-20 working days
eq_isMigrated=2
eq_nobargain
Language_English
linear transformations
Matlab
matrices
multiresponse linear models

PA=Available
Price_€100 and above
PS=Active
R
SAS
softlaunch
statistical analysis
statistics
vector spaces

Product details

  • ISBN 9781118935149
  • Weight: 1021g
  • Dimensions: 180 x 258mm
  • Publication Date: 20 Jun 2017
  • Publisher: John Wiley & Sons Inc
  • Publication City/Country: US
  • Product Form: Hardback
  • Language: English
Delivery/Collection within 10-20 working days

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A thoroughly updated guide to matrix algebra and it uses in statistical analysis and features SAS®, MATLAB®, and R throughout

This Second Edition addresses matrix algebra that is useful in the statistical analysis of data as well as within statistics as a whole. The material is presented in an explanatory style rather than a formal theorem-proof format and is self-contained. Featuring numerous applied illustrations, numerical examples, and exercises, the book has been updated to include the use of SAS, MATLAB, and R for the execution of matrix computations. In addition, André I. Khuri, who has extensive research and teaching experience in the field, joins this new edition as co-author. The Second Edition also:

  • Contains new coverage on vector spaces and linear transformations and discusses computational aspects of matrices
  • Covers the analysis of balanced linear models using direct products of matrices
  • Analyzes multiresponse linear models where several responses can be of interest
  • Includes extensive use of SAS, MATLAB, and R throughout
  • Contains over 400 examples and exercises to reinforce understanding along with select solutions
  • Includes plentiful new illustrations depicting the importance of geometry as well as historical interludes

Matrix Algebra Useful for Statistics, Second Edition is an ideal textbook for advanced undergraduate and first-year graduate level courses in statistics and other related disciplines. The book is also appropriate as a reference for independent readers who use statistics and wish to improve their knowledge of matrix algebra.

THE LATE SHAYLE R. SEARLE, PHD, was professor emeritus of biometry at Cornell University. He was the author of Linear Models for Unbalanced Data and Linear Models and co-author of Generalized, Linear, and Mixed Models, Second Edition, Matrix Algebra for Applied Economics, and Variance Components, all published by Wiley. Dr. Searle received the Alexander von Humboldt Senior Scientist Award, and he was an honorary fellow of the Royal Society of New Zealand.

ANDRÉ I. KHURI, PHD, is Professor Emeritus of Statistics at the University of Florida. He is the author of Advanced Calculus with Applications in Statistics, Second Edition and co-author of Statistical Tests for Mixed Linear Models, all published by Wiley. Dr. Khuri is a member of numerous academic associations, among them the American Statistical Association and the Institute of Mathematical Statistics.

The late Shayle R. Searle, PhD, was professor emeritus of biometry at Cornell University. He was the author of Linear Models for Unbalanced Data and Linear Models and co-author of Generalized, Linear, and Mixed Models, Second Edition, Matrix Algebra for Applied Economics, and Variance Components, all published by Wiley. Dr. Searle received the Alexander von Humboldt Senior Scientist Award, and he was an honorary fellow of the Royal Society of New Zealand.

André I. Khuri, PhD, is Professor Emeritus of Statistics at the University of Florida. He is the author of Advanced Calculus with Applications in Statistics, Second Edition and co-author of Statistical Tests for Mixed Linear Models, all published by Wiley. Dr. Khuri is a member of numerous academic associations, among them the American Statistical Association and the Institute of Mathematical Statistics.