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The Coordinate-Free Approach to Linear Models: Cambridge Series in Statistical and Probabilistic Mathematics, cartea 19

Autor Michael J. Wichura
en Limba Engleză Hardback – 22 oct 2006
This book is about the coordinate-free, or geometric, approach to the theory of linear models; more precisely, Model I ANOVA and linear regression models with non-random predictors in a finite-dimensional setting. This approach is more insightful, more elegant, more direct, and simpler than the more common matrix approach to linear regression, analysis of variance, and analysis of covariance models in statistics. The book discusses the intuition behind and optimal properties of various methods of estimating and testing hypotheses about unknown parameters in the models. Topics covered range from linear algebra, such as inner product spaces, orthogonal projections, book orthogonal spaces, Tjur experimental designs, basic distribution theory, the geometric version of the Gauss-Markov theorem, optimal and non-optimal properties of Gauss-Markov, Bayes, and shrinkage estimators under assumption of normality, the optimal properties of F-test, and the analysis of covariance and missing observations.
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Specificații

ISBN-13: 9780521868426
ISBN-10: 0521868424
Pagini: 214
Ilustrații: 7 tables
Dimensiuni: 178 x 254 x 13 mm
Greutate: 0.54 kg
Editura: Cambridge University Press
Colecția Cambridge University Press
Seria Cambridge Series in Statistical and Probabilistic Mathematics

Locul publicării:New York, United States

Cuprins

1. Introduction; 2. Topics in linear algebra; 3. Random vectors; 4. Gauss-Markov estimation; 5. Normal theory: estimation; 6. Normal theory: testing; 7. Analysis of covariance; 8. Missing observations.

Recenzii

'Compelementary subjects are sketched in sequences of insightful exercises to the reader.' Zentralblatt MATH

Notă biografică


Descriere

Treats Model I ANOVA and linear regression models with non-random predictors in a finite-dimensional setting.