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  4. Archetypal analysis as an autoencoder
 
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2015
Conference Paper
Title

Archetypal analysis as an autoencoder

Abstract
We present an efficient approach to archetypal analysis where we use sub-gradient algorithms for optimization over the simplex to determine archetypes and reconstruction coefficients. Runtime evaluations reveal our approach to be notably more efficient than previous techniques. As an practical application, we consider archetypal analysis for autoencoding.
Author(s)
Bauckhage, Christian  
Kersting, Kristian  
Hoppe, F.
Thurau, Christian  
Mainwork
Workshop New Challenges in Neural Computation, NC2 2015  
Conference
Workshop "New Challenges in Neural Computation" (NC2) 2015  
German Conference on Pattern Recognition (GCPR) 2015  
Link
Link
Language
English
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
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