DocumentCode
1755603
Title
A Novel SURE-Based Criterion for Parametric PSF Estimation
Author
Feng Xue ; Blu, T.
Author_Institution
Nat. Key Lab. of Sci. & Technol. on Test Phys. & Numerical Math., Beijing, China
Volume
24
Issue
2
fYear
2015
fDate
Feb. 2015
Firstpage
595
Lastpage
607
Abstract
We propose an unbiased estimate of a filtered version of the mean squared error - the blur-SURE (Stein´s unbiased risk estimate)-as a novel criterion for estimating an unknown point spread function (PSF) from the degraded image only. The PSF is obtained by minimizing this new objective functional over a family of Wiener processings. Based on this estimated blur kernel, we then perform nonblind deconvolution using our recently developed algorithm. The SURE-based framework is exemplified with a number of parametric PSF, involving a scaling factor that controls the blur size. A typical example of such parametrization is the Gaussian kernel. The experimental results demonstrate that minimizing the blur-SURE yields highly accurate estimates of the PSF parameters, which also result in a restoration quality that is very similar to the one obtained with the exact PSF, when plugged into our recent multi-Wiener SURE-LET deconvolution algorithm. The highly competitive results obtained outline the great potential of developing more powerful blind deconvolution algorithms based on SURE-like estimates.
Keywords
deconvolution; image restoration; mean square error methods; optical transfer function; stochastic processes; SURE-based criterion; Stein unbiased risk estimate; Wiener processing; blur kernel estimation; blur-SURE; degraded image; mean squared error; multiWiener SURE-LET deconvolution algorithm; nonblind deconvolution; objective functional minimization; parametric PSF estimation; restoration quality; scaling factor; Covariance matrices; Deconvolution; Estimation; Image restoration; Kernel; Minimization; Noise; Parametric PSF estimation; SURE; Wiener filtering; blur-SURE;
fLanguage
English
Journal_Title
Image Processing, IEEE Transactions on
Publisher
ieee
ISSN
1057-7149
Type
jour
DOI
10.1109/TIP.2014.2380174
Filename
6983630
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