TY - JOUR
T1 - Blind source separation of images based on general cross correlation of linear operators
AU - Shamir, Noam
AU - Zalevsky, Zeev
AU - Yaroslavsky, Leonid
AU - Javidi, Bahram
PY - 2011/4
Y1 - 2011/4
N2 - Blind source separation is a process in which mixed signals, obtained as a linear combination of various source signals, are decomposed into their original sources. The source signals and their mixture weights are unknown, but a priori information about their statistical behavior and mixing model is available. In this paper, a new algorithm based on generalized cross correlation linear-operator set is proposed. This algorithm significantly improves source-separation quality compared to several other well-known algorithms, such as subband decomposition independent component analysis, block Gaussian likelihood, and convex analysis of mixtures of non-negative sources.
AB - Blind source separation is a process in which mixed signals, obtained as a linear combination of various source signals, are decomposed into their original sources. The source signals and their mixture weights are unknown, but a priori information about their statistical behavior and mixing model is available. In this paper, a new algorithm based on generalized cross correlation linear-operator set is proposed. This algorithm significantly improves source-separation quality compared to several other well-known algorithms, such as subband decomposition independent component analysis, block Gaussian likelihood, and convex analysis of mixtures of non-negative sources.
UR - http://www.scopus.com/inward/record.url?scp=80055114390&partnerID=8YFLogxK
U2 - 10.1117/1.3596620
DO - 10.1117/1.3596620
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AN - SCOPUS:80055114390
SN - 1017-9909
VL - 20
JO - Journal of Electronic Imaging
JF - Journal of Electronic Imaging
IS - 2
M1 - 023017
ER -