Approximated and User Steerable tSNE for Progressive Visual Analytics

被引:264
作者
Pezzotti, Nicola [1 ]
Lelieveldt, Boudewijn P. F. [2 ,3 ]
van der Maaten, Laurens [2 ]
Hollt, Thomas [1 ]
Eisemann, Elmar [1 ]
Vilanova, Anna [1 ]
机构
[1] Delft Univ Technol, Comp Graph & Visualizat Grp, Delft, Netherlands
[2] Delft Univ Technol, Pattern Recognit & Bioinformat Grp, Delft, Netherlands
[3] Leiden Univ, Med Ctr, Dept Radiol, Div Image Proc, Leiden, Netherlands
关键词
High dimensional data; dimensionality reduction; progressive visual analytics; approximate computation; DIMENSIONALITY REDUCTION; VISUALIZATION; EXPRESSION;
D O I
10.1109/TVCG.2016.2570755
中图分类号
TP31 [计算机软件];
学科分类号
081205 [计算机软件];
摘要
Progressive Visual Analytics aims at improving the interactivity in existing analytics techniques by means of visualization as well as interaction with intermediate results. One key method for data analysis is dimensionality reduction, for example, to produce 2D embeddings that can be visualized and analyzed efficiently. t-Distributed Stochastic Neighbor Embedding (tSNE) is a well-suited technique for the visualization of high-dimensional data. tSNE can create meaningful intermediate results but suffers from a slow initialization that constrains its application in Progressive Visual Analytics. We introduce a controllable tSNE approximation (A-tSNE), which trades off speed and accuracy, to enable interactive data exploration. We offer real-time visualization techniques, including a density-based solution and a Magic Lens to inspect the degree of approximation. With this feedback, the user can decide on local refinements and steer the approximation level during the analysis. We demonstrate our technique with several datasets, in a real-world research scenario and for the real-time analysis of high-dimensional streams to illustrate its effectiveness for interactive data analysis.
引用
收藏
页码:1739 / 1752
页数:14
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