263 pages, b/w illustrations
Due to its flexibility and availability, R has become the computing software of choice for statistical computing and generating graphics across various fields of research. "Guidebook to R Graphics Using Microsoft Windows" offers a unique presentation of R, guiding new users through its many benefits, including the creation of high-quality graphics.
Beginning with getting the program up and running, this book takes readers step by step through the process of creating histograms, boxplots, strip charts, time series graphs, steam-and-leaf displays, scatterplot matrices, and map graphs. In addition, the book presents:
- Tips for establishing, saving, and printing graphs along with essential base-package plotting functions
- Interactive R programs for carrying out common tasks such as inputting values, moving data on a natural spline, adjusting three-dimensional graphs, and understanding simple and local linear regression
- Various external packages for R that help to create more complex graphics like rimage, gplots, ggplot2, tripack, rworldmap, and plotrix packages
Throughout the book, concise explanations of key concepts of R graphics assist readers in carrying out the presented procedures, and any coverage of functions is clearly written out and displayed in the text as demos. The discussed techniques are accompanied by a wealth of screenshots and graphics with related R code available on the book's FTP site, and numerous exercises allow readers to test their understanding of the presented material.
"Guidebook to R Graphics Using Microsoft Windows" is a valuable resource for researchers in the fields of statistics, public health, business, and the life and social sciences who use or would like to learn how to use R to create visual representations of data. The book can also be used as a supplement for courses on statistical analysis at the upper-undergraduate level.
1. Basic graphics 1
2. Graphics for statistical analysis 65
3. Interactive R programs 139
4. Graphics obtained using packages based on R 193
5. Appendix 253
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Kunio Takezawa, PhD, is Research Scientist in the Department of Information Science and Technology at the National Agricultural Research Center (Japan) and Associate Professor in the Cooperative Graduate School System at the University of Tsukuba (Japan). He has published numerous journal articles in his areas of research interest, which include nonparametric regression, smoothing methods, and fuzzy estimation. Dr. Takezawa is the author of Introduction to Nonparametric Regression, also published by Wiley.