作者
Everton Z Nadalin, André K Takahata, Leonardo T Duarte, Ricardo Suyama, Romis Attux
发表日期
2010
研讨会论文
Latent Variable Analysis and Signal Separation: 9th International Conference, LVA/ICA 2010, St. Malo, France, September 27-30, 2010. Proceedings 9
页码范围
394-401
出版商
Springer Berlin Heidelberg
简介
In this work, we present a discussion concerning some fundamental aspects of sparse component analysis (SCA), a methodology that has been increasingly employed to solve some challenging signal processing problems. In particular, we present some insights into the use of ℓ1 norm as a quantifier of sparseness and its application as a cost function to solve the blind source separation (BSS) problem. We also provide results on experiments in which source extraction was successfully made when we performed a search for sparse components in the mixtures of sparse signals. Finally, we make an analysis of the behavior of this approach on scenarios in which the source signals are not sparse.
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EZ Nadalin, AK Takahata, LT Duarte, R Suyama… - Latent Variable Analysis and Signal Separation: 9th …, 2010