Data Analysis and Graphics Using R: An Example-Based Approach (Cambridge Series in Statistical and Probabilistic Mathematics, Series Number 10)
Maindonald, John; Braun, W. John
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Language: English
Published by Cambridge University Press, 2010
Series: Book 32 of 64 - Cambridge Series in Statistical and Probabilistic Mathematics
- Hardcover
- Used

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The book has been read and studied, with some annotations, mostly in the margins. Pages intact, spine undamaged, cover corners worn.
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- Title
- Data Analysis and Graphics Using R: An Example-Based Approach (Cambridge Series in Statistical and Probabilistic Mathematics, Series Number 10)
- Author
- Maindonald, John; Braun, W. John
- Publisher
- Cambridge University Press
- Publication year
- 2010
- Condition
- Fair
- Binding
- Hardcover
- Language
- English
- ISBN 10
- 0521762936
- ISBN 13
- 9780521762939
- Edition
- 3rd Edition
- Item weight
- 1,247 grams
- Dimensions
- 3.18 centimeters width by 18.42 centimeters height by 25.4 centimeters depth
- Series
- Book 32 of 64: Cambridge Series in Statistical and Probabilistic Mathematics
Discover what you can do with R! Introducing the R system, covering standard regression methods, then tackling more advanced topics, this book guides users through the practical, powerful tools that the R system provides. The emphasis is on hands-on analysis, graphical display, and interpretation of data. The many worked examples, from real-world research, are accompanied by commentary on what is done and why. The companion website has code and datasets, allowing readers to reproduce all analyses, along with solutions to selected exercises and updates. Assuming basic statistical knowledge and some experience with data analysis (but not R), the book is ideal for research scientists, final-year undergraduate or graduate-level students of applied statistics, and practicing statisticians. It is both for learning and for reference. This third edition expands upon topics such as Bayesian inference for regression, errors in variables, generalized linear mixed models, and random forests.
"Synopsis" may belong to another edition of this title.
About the Author
John Maindonald is Visiting Fellow at the Mathematical Sciences Institute at the Australian National University. He has collaborated extensively with scientists in a wide range of application areas, from medicine and public health to population genetics, machine learning, economic history, and forensic linguistics.
W. John Braun is Professor in the Department of Statistical and Actuarial Sciences at the University of Western Ontario. He has collaborated with biostatisticians, biologists, psychologists, and most recently has become involved with a network of forestry researchers.
W. John Braun is Professor in the Department of Statistical and Actuarial Sciences at the University of Western Ontario. He has collaborated with biostatisticians, biologists, psychologists, and most recently has become involved with a network of forestry researchers.
"About the title" may belong to another edition of this title.
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