DocumentCode :
1884134
Title :
A semiblind approach to deconvolution of motion blurred images using subband decomposition and independent component analysis
Author :
Mirajkar, Gayatri
Author_Institution :
Shivaji Univ., Kolhapur, India
fYear :
2012
fDate :
12-15 Aug. 2012
Firstpage :
662
Lastpage :
667
Abstract :
The application of multivariate data analysis methods such as ICA to solve the blind deconvolution problem requires the source images to be statistically independent. Since this is not always true, a subband decomposition approach is taken. Here it is assumed that the wideband source signals are dependent, but there exist some narrow subbands where they are independent. These subbands are determined by finding those subbands with minimum mutual information between corresponding nodes of the subband decomposition scheme. Subband decomposition is brought about by undecimated wavelet transform as well as Gabor wavelets. Patches are selected randomly from these subband images and given as inputs to the ICA algorithm. The ICA algorithm gives as its output the independent components which resemble short edges and capture the blurring information in the image around edges and corners. These are used as PSFs given to the blind Richardson-Lucy algorithm for deconvolution of the blurred image. The results obtained are comparable to those obtained by the blind Richardson-Lucy algorithm.
Keywords :
blind source separation; deconvolution; image motion analysis; independent component analysis; wavelet transforms; Gabor wavelets; ICA; blind Richardson-Lucy algorithm; blind deconvolution problem; blurred image deconvolution; blurring information; independent component analysis; motion blurred images deconvolution; multivariate data analysis; semiblind approach; source images; statistically independent; subband decomposition; undecimated wavelet transform; Deconvolution; Gabor filters; Image restoration; Kernel; Vectors; Wavelet transforms; Gabor wavelets; blind deconvolution; independent component analysis; subband decomposition; undecimated wavelet transform;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing, Communication and Computing (ICSPCC), 2012 IEEE International Conference on
Conference_Location :
Hong Kong
Print_ISBN :
978-1-4673-2192-1
Type :
conf
DOI :
10.1109/ICSPCC.2012.6335711
Filename :
6335711
Link To Document :
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