DocumentCode :
2162046
Title :
Blind deconvolution of noisy blurred images via dispersion minimization
Author :
Vural, Cabir ; Sethares, William A.
Author_Institution :
Dept. of Electr. & Comput. Eng., Wisconsin Univ., Madison, WI, USA
Volume :
2
fYear :
2002
fDate :
2002
Firstpage :
787
Abstract :
In linear image restoration, the point spread function of the degrading system is assumed known even though this information is usually not available in real applications. As a result, both blur identification and image restoration must be performed from the observed noisy blurred image. This paper presents a computationally simple linear adaptive finite impulse response filter for blind image deconvolution. This is essentially a two-dimensional version of the constant modulus algorithm that is well known in the field of blind equalization. The two-dimensional extension is shown capable of reconstructing noisy blurred images using partial a priori information about the true image and the point spread function. The method is applicable to minimum as well as mixed phase blurs. Experimental results are provided.
Keywords :
FIR filters; adaptive filters; deconvolution; image denoising; image reconstruction; image restoration; minimisation; optical transfer function; two-dimensional digital filters; blind deconvolution; blur identification; dispersion minimization; finite impulse response filter; image reconstruction; linear adaptive filter; linear image restoration; mixed phase blurs; noisy blurred images; partial a priori information; point spread function; two-dimensional constant modulus algorithm; Adaptive filters; Blind equalizers; Convolution; Cost function; Deconvolution; Degradation; Finite impulse response filter; Image reconstruction; Image restoration; Large scale integration;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Digital Signal Processing, 2002. DSP 2002. 2002 14th International Conference on
Print_ISBN :
0-7803-7503-3
Type :
conf
DOI :
10.1109/ICDSP.2002.1028208
Filename :
1028208
Link To Document :
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