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R wrapper for Van der Maaten's Barnes-Hut implementation of t-Distributed Stochastic Neighbor Embedding

Installation

To install from CRAN:

install.packages("Rtsne") # Install Rtsne package from CRAN

To install the latest version from the github repository, use:

if(!require(devtools)) install.packages("devtools") # If not already installed
devtools::install_github("jkrijthe/Rtsne")

Usage

After installing the package, use the following code to run a simple example (to install, see below).

library(Rtsne) # Load package
iris_unique <- unique(iris) # Remove duplicates
set.seed(42) # Sets seed for reproducibility
tsne_out <- Rtsne(as.matrix(iris_unique[,1:4])) # Run TSNE
plot(tsne_out$Y,col=iris_unique$Species) # Plot the result

Details

This R package offers a wrapper around the Barnes-Hut TSNE C++ implementation of [2] [3]. Only minor changes were made to the original code to allow it to function as an R package.

References

[1] L.J.P. van der Maaten and G.E. Hinton. Visualizing High-Dimensional Data Using t-SNE. Journal of Machine Learning Research 9(Nov):2579-2605, 2008.

[2] L.J.P. van der Maaten. Barnes-Hut-SNE. In Proceedings of the International Conference on Learning Representations, 2013.

[3] http://homepage.tudelft.nl/19j49/t-SNE.html

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R wrapper for Van der Maaten's Barnes-Hut implementation of t-Distributed Stochastic Neighbor Embedding

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  • C++ 82.3%
  • R 17.1%
  • C 0.6%