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DataVisualizations (version 1.1.1)

Visualizations of High-Dimensional Data

Description

A collection of various visualizations methods is provided. With regards to classified high-dimensional data several visualizations are presented, e.g. the heat map and silhouette plot. In the case of exploratory data analysis, 'DataVisualizations' makes it possible to inspect the distribution of each feature of a dataset visually through the combination of four methods. One of these methods is the Pareto density estimation (PDE) of the probability density function (pdf). The visualizations of the distribution of distances using PDE, the scatter-density plot using PDE for two variables, the Shepard density plot as well as the Bland-Altman plot are presented here. For a classification of countries, a map of the world or Germany can be visualized. More detailed explanations can be found in the book of Thrun, M.C.:"Projection-Based Clustering through Self-Organization and Swarm Intelligence" (2018) . Furthermore, for categorical features the ABC analysis improved Pie charts, slope charts and fan plots are usable. Additionally, for measurements across a geographic area an easy to use function for a Choropleth map is presented here. At last, the PDE-optimized violin plot for either classified or non-classified, univariate or multivariate data is available here. The the PDE-optimized violin plot is an alternative for the box-and-whisker plot (boxplot).

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Version

Install

install.packages('DataVisualizations')

Monthly Downloads

722

Version

1.1.1

License

GPL-3

Maintainer

Michael Thrun

Last Published

June 30th, 2018

Functions in DataVisualizations (1.1.1)

ShepardDensityPlot

Shepard density Diagram
ShepardScatterPlot

Draws a Shepard diagram
PDEscatter

Scatter Density Plot
QQplotWithFit

QQplot with Fit
QQplotForStandardization

QQplot with Fit
plotChoroplethMap

Plot the Choropleth Map
plotWorldmap

plots a world map by country codes
InspectVariable

Visualization of Distribution of one variable
StatPDEdensity

Pareto Density Estimation
categoricalVariable

A categorical Feature.
fanPlot

The fan plot
SilhouettePlot

Silhouette plot for classified data.
PDEviolinPlot

PDE optimized violoin plot for multiple variables
stat_pde_density

Calculate Pareto density estimation for ggplot2 plots
nanPlot

Plot not finite values as a bar plot for each feature d
slopeChart

Slope Chart
PixelMatrixPlot

Pixel Matrix Plot
inPSphere2D

2D data points in Pareto Sphere
PmatrixColormap

P-Matrix colors
pieChart

The fan plot
plot3D

3D plot of points
ClassViolinPlot

Creates PDE optimized Violin plot for all classes
ClassPDEplotMaxLikeli

Create PDE plot for all classes with maximum likelihood
Lsun3D

Lsun3D inspired by FCPS
MAplot

Minus versus Add plot
DataVisualizations-package

DataVisualizations
ITS

Income Tax Share
DefaultColorSequence

Default color sequence for plots
InspectDistances

Inspection of Distance-Distribution
BoxplotData

Boxplots for multiple variables
ClassBoxPlot

Creates BoxPlot plot for all classes
ClassPDEplot

PDE Plot for all classes
Heatmap

Heatmap for Clustering
MTY

Muncipal Income Tax Yield
InspectScatterOfData

Pairwise scatterplots and optimal histograms
ChoroplethPostalCodesAndAGS_Germany

Postal Codes and AGS of Germany for a Choropleth Map
HeatmapColors

Default color sequence for plots
PDEplot

PDE plot
DrawWorldWithCls

Plot a classificated world map
GoogleMapsCoordinates

Google Maps with marked coordinates