
Linear Models for Multivariate, Time Series, and Spatial Data
Ronald Christensen(Author)
Springer (Publisher)
Published on 15. August 1997
Book
Hardback
336 pages
978-0-387-97413-2 (ISBN)
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Description
This is a self-contained companion volume to the author's book "Plane Answers to Complex Questions: The Theory of Linear Models". It provides introductions to several topics related to linear model theory: multivariate linear models, discriminant analysis, principal components, factor analysis, time series in both the frequency and time domains, and spatial data analysis (geostatistics). The purpose of this volume is to use three fundamental ideas from linear model theory and exploit their properties in examining multivariate, time series and spatial data. The three ideas are: best linear prediction, projections, and Mahalanobis' distance. Multivariate linear models are viewed as linear models with a nondiagonal covariance matrix. Discriminant analysis is related to the Mahalanobis distance and multivariate analysis of variance. Principle components are best linear predictors. Frequency domain time series involves linear models with a peculiar design matrix. Time domain analysis involves models that are linear in the parameters but have random design matrices. Best linear predictors are used for forecasting time series and for estimation in time domain analysis. Spatial data analysis involves linear models in which the covariance matrix is modeled from the data and making best linear unbiased predictions of future observables. This book develops a unified approach to this wide ranging collection of problems. Ronald Christensen is Professor of Statistics at the University of New Mexico. He is recognized internationally as an expert in the theory and application of linear models. In addition to this book and "Plane Answers," he is the author of numerous research articles, "Log-Linear Models and Logistic Regression", and "Analysis of Variance, Design, TOC:Multivariate Linear Models.- Discrimination and Allocation.- Principal Components and Factor Analysis.- Frequency Analysis of Time Series.- Time Domain Analysis.- Linear Models for Spatial Data: Kriging.
More details
Series
Edition
1991. Corr. 2nd Printing ed.
Language
English
Place of publication
New York, NY
United States
Target group
College/higher education
Grad students
Illustrations
40 s/w Abbildungen
illustrations
Dimensions
Height: 234 mm
Width: 156 mm
Thickness: 20 mm
Weight
648 gr
ISBN-13
978-0-387-97413-2 (9780387974132)
DOI
10.1007/b39556
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Linear Models for Multivariate, Time Series, and Spatial Data
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