DocumentCode :
2165767
Title :
Stimulation Spectrum Based High-dimensional Data Visualization
Author :
Liu, Kan ; Liu, Ping ; Jin, Dawei
Author_Institution :
Zhongnan Univ. of Economic & Law, Wuhan
fYear :
2006
fDate :
5-7 July 2006
Firstpage :
721
Lastpage :
724
Abstract :
One of the main goals of high-dimensional data visualization is to reduce dimensions, so that the data can be projected onto 2D or 3D space. This paper proposes a stimulation spectrum based visualization approach, in which each high-dimension data is regarded as a stimulation spectrum and the change of each value of data attribute corresponds to the change of wavelength of visible spectrum. According to the relationship between stimulation spectrum and color space, we can project high-dimensional data onto 3-dimensional space, and easily observe the distribution of the data. We also demonstrate this novel approach with synthetic data and real data, and the result is very promising
Keywords :
data reduction; data visualisation; 2D space projection; 3D space projection; color space; data attribute; data distribution; dimension reduction; high-dimensional data visualization; stimulation spectrum; Data visualization; Frequency; Humans; Image databases; Principal component analysis; Retina; Visual databases; RGB model; Stimulation Spectrum; high-dimensional data visualization; reduce dimension.;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information Visualization, 2006. IV 2006. Tenth International Conference on
Conference_Location :
London, England
ISSN :
1550-6037
Print_ISBN :
0-7695-2602-0
Type :
conf
DOI :
10.1109/IV.2006.99
Filename :
1648339
Link To Document :
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