
Analysis of Variance, Design, and Regression
Applied Statistical Methods
Ronald Christensen(Author)
Chapman & Hall/CRC (Publisher)
1st Edition
Published on 1. June 1996
Book
Hardback
608 pages
978-0-412-06291-9 (ISBN)
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Description
This text presents a comprehensive treatment of basic statistical methods and their applications. It focuses on the analysis of variance and regression, but also addressing basic ideas in experimental design and count data.
The book has four connecting themes: similarity of inferential procedures, balanced one-way analysis of variance, comparison of models, and checking assumptions. Most inferential procedures are based on identifying a scalar parameter of interest, estimating that parameter, obtaining the standard error of the estimate, and identifying the appropriate reference distribution. Given these items, the inferential procedures are identical for various parameters. Balanced one-way analysis of variance has a simple, intuitive interpretation in terms of comparing the sample variance of the group means with the mean of the sample variance for each group. All balanced analysis of variance problems are considered in terms of computing sample variances for various group means. Comparing different models provides a structure for examining both balanced and unbalanced analysis of variance problems and regression problems. Checking assumptions is presented as a crucial part of every statistical analysis.
Examples using real data from a wide variety of fields are used to motivate theory. Christensen consistently examines residual plots and presents alternative analyses using different transformation and case deletions. Detailed examination of interactions, three factor analysis of variance, and a split-plot design with four factors are included. The numerous exercises emphasize analysis of real data.
Senior undergraduate and graduate students in statistics and graduate students in other disciplines using analysis of variance, design of experiments, or regression analysis will find this book useful.
The book has four connecting themes: similarity of inferential procedures, balanced one-way analysis of variance, comparison of models, and checking assumptions. Most inferential procedures are based on identifying a scalar parameter of interest, estimating that parameter, obtaining the standard error of the estimate, and identifying the appropriate reference distribution. Given these items, the inferential procedures are identical for various parameters. Balanced one-way analysis of variance has a simple, intuitive interpretation in terms of comparing the sample variance of the group means with the mean of the sample variance for each group. All balanced analysis of variance problems are considered in terms of computing sample variances for various group means. Comparing different models provides a structure for examining both balanced and unbalanced analysis of variance problems and regression problems. Checking assumptions is presented as a crucial part of every statistical analysis.
Examples using real data from a wide variety of fields are used to motivate theory. Christensen consistently examines residual plots and presents alternative analyses using different transformation and case deletions. Detailed examination of interactions, three factor analysis of variance, and a split-plot design with four factors are included. The numerous exercises emphasize analysis of real data.
Senior undergraduate and graduate students in statistics and graduate students in other disciplines using analysis of variance, design of experiments, or regression analysis will find this book useful.
More details
Series
Language
English
Place of publication
United Kingdom
Publishing group
Taylor & Francis Ltd
Target group
College/higher education
Professional and scholarly
Dimensions
Height: 246 mm
Width: 171 mm
Weight
1270 gr
ISBN-13
978-0-412-06291-9 (9780412062919)
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Analysis of Variance, Design, and Regression
Linear Modeling for Unbalanced Data, Second Edition
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Content
Preface
Introduction
One Sample
A General Theory for Testing and Confidence Intervals
Two Sample Problems
One-Way Analysis of Variance
Multiple Comparison Methods
Simple Linear and Polynomial Regression
The Analysis of Count Data
Basic Experimental Designs
Analysis of Covariance
Factorial Treatment Structures
Split Plots, Repeated Measures, Random Effects, and Subsampling
Multiple Regression: Matrix Formation
Unbalanced Multifactor Analysis of Variance
Confounding and Fractional Replication in 2n Factorial Systems
Nonlinear Regression
Appendix A: Matrices
Appendix B: Tables
References
Author Index
Subject Index
Introduction
One Sample
A General Theory for Testing and Confidence Intervals
Two Sample Problems
One-Way Analysis of Variance
Multiple Comparison Methods
Simple Linear and Polynomial Regression
The Analysis of Count Data
Basic Experimental Designs
Analysis of Covariance
Factorial Treatment Structures
Split Plots, Repeated Measures, Random Effects, and Subsampling
Multiple Regression: Matrix Formation
Unbalanced Multifactor Analysis of Variance
Confounding and Fractional Replication in 2n Factorial Systems
Nonlinear Regression
Appendix A: Matrices
Appendix B: Tables
References
Author Index
Subject Index