2008

Visualizing Data Using t-SNE

Geoffrey Hinton

citations

Cite Score

97

AI summary

This paper introduces t-SNE, a novel technique for visualizing high-dimensional data in lower dimensions using a variation of Stochastic Neighbor Embedding. t-SNE reduces crowding, reveals structure at different scales, and outperforms other techniques on various datasets like MNIST and COIL-20.

Main Contributions

  • Introduces t-SNE, a new technique for visualizing high-dimensional data in low-dimensional space.
  • Presents a variation of Stochastic Neighbor Embedding (SNE) that is easier to optimize.
  • Reduces the tendency to crowd points together in the center of the map, leading to better visualizations.
  • Demonstrates that t-SNE is better than existing techniques at creating a single map that reveals structure at many different scales.
  • Shows how t-SNE can use random walks on neighborhood graphs to visualize very large datasets.

Abstract

We present a new technique called “t-SNE” that visualizes high-dimensional data by giving each datapoint a location in a two or three-dimensional map. The technique is a variation of Stochastic Neighbor Embedding (Hinton and Roweis, 2002) that is much easier to optimize, and produces significantly better visualizations by reducing the tendency to crowd points together in the center of the map. t-SNE is better than existing techniques at creating a single map that reveals structure at many different scales. This is particularly important for high-dimensional data that lie on several different, but related, low-dimensional manifolds, such as images of objects from multiple classes seen from multiple viewpoints. For visualizing the structure of very large data sets, we show how t-SNE can use random walks on neighborhood graphs to allow the implicit structure of all of the data to influence the way in which a subset of the data is displayed. We illustrate the performance of t-SNE on a wide variety of data sets and compare it with many other non-parametric visualization techniques, including Sammon mapping, Isomap, and Locally Linear Embedding. The visualizations produced by t-SNE are significantly better than those produced by the other techniques on almost all of the data sets.

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