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  4. From outliers to prototypes: Ordering data
 
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2006
Conference Paper
Title

From outliers to prototypes: Ordering data

Abstract
We propose simple and fast methods based on nearest neighbors that order objects from high-dimensional data sets from typical points to untypical points. On the one hand, we show that these easy-to-compute orderings allow us to detect outliers (i.e. very untypical points) with a performance comparable to or better than other often much more sophisticated methods. On the other hand, we show how to use these orderings to detect prototypes (very typical points) which facilitate exploratory data analysis algorithms such as noisy nonlinear dimensionality reduction and clustering. Comprehensive experiments demonstrate the validity of our approach.
Author(s)
Harmeling, S.
Dornhege, G.
Tax, D.
Meinecke, F.
Müller, K.-R.
Mainwork
Blind source separation and independent component analysis  
Conference
International Conference on Independent Component Analysis and Blind Signal Seperation (ICA) 2004  
DOI
10.1016/j.neucom.2005.05.015
Language
English
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