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Plane Answers to Complex Questions [electronic resource] : The Theory of Linear Models / by Ronald Christensen.

By: Contributor(s): Series: Springer Texts in StatisticsPublisher: New York, NY : Springer New York, 2011Edition: 4Description: XXII, 494 p. online resourceContent type:
  • text
Media type:
  • computer
Carrier type:
  • online resource
ISBN:
  • 9781441998163
Subject(s): Genre/Form: Additional physical formats: Printed edition:: No titleDDC classification:
  • 519.5 23
LOC classification:
  • QA276-280
Online resources:
Contents:
Introduction -- Estimation -- Testing -- One-Way ANOVA -- Multiple Comparison Techniques -- Regression Analysis -- Multifactor Analysis of Variance -- Experimental Design Models -- Analysis of Covariance -- General Gauss-Markov Models -- Split Plot Models -- Mixed Models and Variance Components -- Model Diagnostics -- Variable Selection -- Collinearity and Alternative Estimates.-.
In: Springer eBooksSummary: This textbook provides a wide-ranging introduction to the use and theory of linear models for analyzing data. The author's emphasis is on providing a unified treatment of linear models, including analysis of variance models and regression models, based on projections, orthogonality, and other vector space ideas. Every chapter comes with numerous exercises and examples that make it ideal for a graduate-level course. All of the standard topics are covered in depth: ANOVA, estimation including Bayesian estimation, hypothesis testing, multiple comparisons, regression analysis, and experimental design models. In addition, the book covers topics that are not usually treated at this level, but which are important in their own right: balanced incomplete block designs, testing for lack of fit, testing for independence, models with singular covariance matrices, variance component estimation, best linear and best linear unbiased prediction, collinearity, and variable selection. This new edition includes a more extensive discussion of best prediction and associated ideas of R2, as well as new sections on inner products and perpendicular projections for more general spaces and Milliken and Graybill’s generalization of Tukey’s one degree of freedom for nonadditivity test.
Item type: eBooks
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Introduction -- Estimation -- Testing -- One-Way ANOVA -- Multiple Comparison Techniques -- Regression Analysis -- Multifactor Analysis of Variance -- Experimental Design Models -- Analysis of Covariance -- General Gauss-Markov Models -- Split Plot Models -- Mixed Models and Variance Components -- Model Diagnostics -- Variable Selection -- Collinearity and Alternative Estimates.-.

This textbook provides a wide-ranging introduction to the use and theory of linear models for analyzing data. The author's emphasis is on providing a unified treatment of linear models, including analysis of variance models and regression models, based on projections, orthogonality, and other vector space ideas. Every chapter comes with numerous exercises and examples that make it ideal for a graduate-level course. All of the standard topics are covered in depth: ANOVA, estimation including Bayesian estimation, hypothesis testing, multiple comparisons, regression analysis, and experimental design models. In addition, the book covers topics that are not usually treated at this level, but which are important in their own right: balanced incomplete block designs, testing for lack of fit, testing for independence, models with singular covariance matrices, variance component estimation, best linear and best linear unbiased prediction, collinearity, and variable selection. This new edition includes a more extensive discussion of best prediction and associated ideas of R2, as well as new sections on inner products and perpendicular projections for more general spaces and Milliken and Graybill’s generalization of Tukey’s one degree of freedom for nonadditivity test.

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