DocumentCode :
1365346
Title :
Blind Underdetermined Mixture Identification by Joint Canonical Decomposition of HO Cumulants
Author :
Karfoul, Ahmad ; Albera, Laurent ; Birot, Gwénaël
Author_Institution :
LTSI, Univ. de Rennes 1, Rennes, France
Volume :
58
Issue :
2
fYear :
2010
Firstpage :
638
Lastpage :
649
Abstract :
A new family of cumulant-based algorithms is proposed in order to blindly identify potentially underdetermined mixtures of statistically independent sources. These algorithms perform a joint canonical decomposition (CAND) of several higher order cumulants through a CAND of a three-way array with special symmetries. These techniques are studied in terms of identifiability, performance and numerical complexity. From a signal processing viewpoint, the proposed methods are shown i) to have a better estimation resolution and ii) to be able to process more sources than the other classical cumulant-based techniques. Second, from a numerical analysis viewpoint, we deal with the convergence speed of several procedures for three-way array decomposition, such as the ACDC scheme. We also show how to accelerate the iterative CAND algorithms by using differently the symmetries of the considered three-way array. Next, from a multilinear algebra viewpoint the paper aims at giving some insights on the uniqueness of a joint CAND of several Hermitian multiway arrays compared to the CAND of only one array. This allows us, as a result, to extend the concept of virtual array (VA) to the case of combination of several VAs.
Keywords :
Hermitian matrices; blind source separation; higher order statistics; ACDC scheme; CAND algorithms; HO cumulants; Hermitian multiway arrays; blind underdetermined mixture identification; convergence speed; cumulant-based algorithms; estimation resolution; joint canonical decomposition; multilinear algebra viewpoint; special symmetries; statistically independent sources; BSS; ICA; INDSCAL; PARAFAC; blind underdetermined mixture identification (BUMI); canonical decomposition; underdetermined mixture;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/TSP.2009.2031731
Filename :
5233820
Link To Document :
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