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DATAMINE
2006

VizRank: Data Visualization Guided by Machine Learning

14 years 18 days ago
VizRank: Data Visualization Guided by Machine Learning
Data visualization plays a crucial role in identifying interesting patterns in exploratory data analysis. Its use is, however, made difficult by the large number of possible data projections showing different attribute subsets that must be evaluated by the data analyst. In this paper, we introduce a method called VizRank, which is applied on classified data to automatically select the most useful data projections. VizRank can be used with any visualization method that maps attribute values to points in a two-dimensional visualization space. It assesses possible data projections and ranks them by their ability to visually discriminate between classes. The quality of class separation is estimated by computing the predictive accuracy of k-nearest neighbor classifier on the data set consisting of x and y positions of the projected data points and their class information. The paper introduces the method and presents experimental results which show that VizRank's ranking of projections ...
Gregor Leban, Blaz Zupan, Gaj Vidmar, Ivan Bratko
Added 11 Dec 2010
Updated 11 Dec 2010
Type Journal
Year 2006
Where DATAMINE
Authors Gregor Leban, Blaz Zupan, Gaj Vidmar, Ivan Bratko
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