![]() GGPlot2 Essentials for Great Data Visualization in R by A. ![]() R Graphics Essentials for Great Data Visualization by A.Machine Learning Essentials: Practical Guide in R by A.Practical Guide To Principal Component Methods in R by A.Practical Guide to Cluster Analysis in R by A.Psychological First Aid by Johns Hopkins University.Excel Skills for Business by Macquarie University.Introduction to Psychology by Yale University.Business Foundations by University of Pennsylvania.IBM Data Science Professional Certificate by IBM.Python for Everybody by University of Michigan.Google IT Support Professional by Google.The Science of Well-Being by Yale University.AWS Fundamentals by Amazon Web Services.Epidemiology in Public Health Practice by Johns Hopkins University.Google IT Automation with Python by Google.Specialization: Genomic Data Science by Johns Hopkins University.Specialization: Software Development in R by Johns Hopkins University.Specialization: Statistics with R by Duke University.Specialization: Master Machine Learning Fundamentals by University of Washington.Courses: Build Skills for a Top Job in any Industry by Coursera.Specialization: Python for Everybody by University of Michigan.Specialization: Data Science by Johns Hopkins University.Course: Machine Learning: Master the Fundamentals by Standford.You can also view a single RColorBrewer palette by specifying its name as follow : # View a single RColorBrewer palette by specifying its nameīrewer.pal(n = 8, name = "RdBu") # "#B2182B" "#D6604D" "#F4A582" "#FDDBC7" "#D1E5F0" "#92C5DE" "#4393C3" "#2166AC" # Barplot using RColorBrewerīarplot(c(2,5,7), col=brewer.pal(n = 3, name = "RdBu"))Ĭoursera - Online Courses and Specialization Data science The palettes names are : Accent, Dark2, Paired, Pastel1, Pastel2, Set1, Set2, Set3 They not imply magnitude differences between groups. Qualitative palettes are best suited to representing nominal or categorical data.The diverging palettes are : BrBG, PiYG, PRGn, PuOr, RdBu, RdGy, RdYlBu, RdYlGn, Spectral Diverging palettes put equal emphasis on mid-range critical values and extremes at both ends of the data range.The palettes names are : Blues, BuGn, BuPu, GnBu, Greens, Greys, Oranges, OrRd, PuBu, PuBuGn, PuRd, Purples, RdPu, Reds, YlGn, YlGnBu YlOrBr, YlOrRd. Sequential palettes are suited to ordered data that progress from low to high (gradient).There are 3 types of palettes : sequential, diverging, and qualitative.
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