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R Data Visualization Recipes

R Data Visualization Recipes

By : Bianchi Lanzetta
4 (1)
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R Data Visualization Recipes

R Data Visualization Recipes

4 (1)
By: Bianchi Lanzetta

Overview of this book

R is an open source language for data analysis and graphics that allows users to load various packages for effective and better data interpretation. Its popularity has soared in recent years because of its powerful capabilities when it comes to turning different kinds of data into intuitive visualization solutions. This book is an update to our earlier R data visualization cookbook with 100 percent fresh content and covering all the cutting edge R data visualization tools. This book is packed with practical recipes, designed to provide you with all the guidance needed to get to grips with data visualization using R. It starts off with the basics of ggplot2, ggvis, and plotly visualization packages, along with an introduction to creating maps and customizing them, before progressively taking you through various ggplot2 extensions, such as ggforce, ggrepel, and gganimate. Using real-world datasets, you will analyze and visualize your data as histograms, bar graphs, and scatterplots, and customize your plots with various themes and coloring options. The book also covers advanced visualization aspects such as creating interactive dashboards using Shiny By the end of the book, you will be equipped with key techniques to create impressive data visualizations with professional efficiency and precision.
Table of Contents (13 chapters)
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Plotting a shape reference palette for ggplot2

Shapes are picked following a default scale when you input a variable to work as shape using ggplot2. You can always choose to tweak this scale to one of your preference. To do so you need to know which shapes are available and how you can call for them. This recipe simply draws the following shape palette:

Figure 2.4 - ggplot2 shape palette.

It shows available points, plus the number used to call for them. Now let's explore the code that built it.

How to do it...

Draw a suitable data frame using rep() and seq() functions, them let's plot those using geom_point():

> palette <- data.frame(x = rep(seq(1,5,1),5))
> palette$y <- c(rep(5,5),rep(4,5)...
Visually different images
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R Data Visualization Recipes
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