Introduction to General and Generalized Linear Models

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Introduction to General and Generalized Linear Models

Data science and analysis: general Probability and statistics Mathematical and statistical software

Authors: Henrik Madsen, Poul Thyregod

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Collection: Chapman & Hall/CRC Texts in Statistical Science

Language: English

Published by: CRC Press

Published on: 9th November 2010

Format: LCP-protected ePub

ISBN: 9781040063224


Introduction to General and Generalized Linear Models

Bridging the gap between theory and practice for modern statistical model building, this book presents likelihood-based techniques for statistical modelling using various types of data. Implementations using R are provided throughout the text, although other software packages are also discussed. Numerous examples show how the problems are solved with R.

After describing the necessary likelihood theory, the book covers both general and generalized linear models using the same likelihood-based methods. It presents the corresponding/parallel results for the general linear models first, since they are easier to understand and often more well known. The authors then explore random effects and mixed effects in a Gaussian context. They also introduce non-Gaussian hierarchical models that are members of the exponential family of distributions. Each chapter contains examples and guidelines for solving the problems via R.

Providing a flexible framework for data analysis and model building, this text focuses on the statistical methods and models that can help predict the expected value of an outcome, dependent, or response variable. It offers a sound introduction to general and generalized linear models using the popular and powerful likelihood techniques.

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