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  • Book Overview & Buying Learning R for Geospatial Analysis
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Learning R for Geospatial Analysis

Learning R for Geospatial Analysis

By : Michael Dorman
3.9 (7)
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Learning R for Geospatial Analysis

Learning R for Geospatial Analysis

3.9 (7)
By: Michael Dorman

Overview of this book

This book is intended for anyone who wants to learn how to efficiently analyze geospatial data with R, including GIS analysts, researchers, educators, and students who work with spatial data and who are interested in expanding their capabilities through programming. The book assumes familiarity with the basic geographic information concepts (such as spatial coordinates), but no prior experience with R and/or programming is required. By focusing on R exclusively, you will not need to depend on any external software—a working installation of R is all that is necessary to begin.
Table of Contents (13 chapters)
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10
A. External Datasets Used in Examples
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11
B. Cited References
12
Index

Appendix A. External Datasets Used in Examples

Most of the code examples in this book use data from external files. To reproduce the examples, you are encouraged to download these files from the book's website and then copy them to a single directory on the hard drive. In the example code, the files are assumed to reside in C:\Data. To use a different directory, the examples code should be modified accordingly.

The external files in this book's examples, in an alphabetical order of first filenames, are listed in the following table:

Dataset

Associated files

Description

Daily meteorological data for Albuquerque International Airport

338284.csv

GHCND_documentation.pdf

Daily climatic records from the Albuquerque International Airport, New Mexico, United States meteorological station. Downloaded from the NOAA Climate Data Online website at http://www.ncdc.noaa.gov/cdo-web. Accessed May 2014.

Monthly meteorological data for Spain

343452.csv

GHCNDMS_documentation...

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Learning R for Geospatial Analysis
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