New to the Second Edition:
- Coverage of inference for linear models has been expanded into two chapters.
- Expanded coverage of multiple comparisons, random and mixed effects models, model selection, and missing data.
- A new chapter on generalized linear models (Chapter 12).
- A new section on multivariate linear models in Chapter 13, and expanded coverage of the Bayesian linear models and longitudinal models.
- A new section on regularized regression in Chapter 14.
- Detailed data illustrations using R.
The authors' fresh approach, methodical presentation, wealth of examples, use of R, and introduction to topics beyond the classical theory set this book apart from other texts on linear models. It forms a refreshing and invaluable first step in students' study of advanced linear models, generalized linear models, nonlinear models, and dynamic models.
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