Название: Data Visualization with ggplot2: World Cup 2014 & 2018 Автор: Naoki Yamaoka Издательство: Amazon.com Services LLC Год: 2020 Страниц: 301 Язык: английский Формат: pdf, epub Размер: 25.2 MB
This book presents different ways to visualize data in ggplot2. ggplot2 is a R package dedicated to data visualization. It can greatly improve the quality and aesthetics of your graphics, and will make you much more efficient in creating them. ggplot2 allows to build almost any type of chart. The R graph gallery focuses on it so almost every section there starts with ggplot2 examples. There is no theoretical explanation of each analysis method. The analysis uses data for FIFA World Cup 2014 & 2018.
1. Visualize the Amount 1.1. Data Import 1.2. Basic Bar Chart 1.3. Switches the x- and y-axes 1.4. Adds a Plot Title 1.5. Specify the Font 1.6. Modifying Order 1.7. Specify the Colors 1.8. Different Colors for Each Group 1.9. Control Legends 1.10. Position of Legend 1.11. Use Theme 1.12. Cleveland Dot 1.13. Mapping the Aesthetics 1.14. Add Annotations to a Plot 1.15. Draw Line and Rectangle 1.16. Visualize Various Indicators 1.17. Radar Chart 2. Visualize the Distribution (1) 2.1. Histogram Basic Histogram Specify the "binwidth" Specify the "bins" position="stack" position="identity" position="dodge" geom_freqpoly 2.2. Probability Density Function 2.3. Cumulative Density Function (CDF) 2.4. Visualization of Various Indicators 3. Visualize the Distribution (2) 3.1. Boxplot 3.2. Violinplot 3.3. Density Ridges Plot 3.4. Dotplot 3.5. Beeswarm 3.6. Visualization of Various Indicators 4. Visualize the Relationship Between the Two Items 4.1. Basic Scatterplot Basic Scatterplot Regression Line and Confidence Interval Local Polynomial Regression Adjusted R Squared 4.2. Visualization of Various Indicators 5. MDS:Multi Dimensional Scaling 5.1. Euclidean Distance 5.2. Mahalanobis Distance 5.3. Pearson Correlation Coefficient 5.4. Cosine Simirality 6. FA:Factor Analysis 6.1. Regression & Varimax 6.2. Cluster Analysis of the Results of FA 6.3. Bartlett & Promax 6.4. Cluster Analysis of the Results of FA 7. PCA:Principal Component Analysis 7.1. Principal Component Analysis 7.2. Cluster Analysis of the Results of PCA 8. ICA:Independent Component Analysis 8.1. Independent Component Analysis 8.2. Cluster Analysis of the Results of ICA
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