DocumentCode :
2706019
Title :
A comparative study between parametric blur estimation methods
Author :
Chardon, S. ; Vozel, B. ; Chehdi, K.
Author_Institution :
ENSSAT, Rennes I Univ., France
Volume :
6
fYear :
1999
fDate :
15-19 Mar 1999
Firstpage :
3233
Abstract :
In pattern recognition problems, the effectiveness of the analysis depends heavily on the quality of the image to be processed. This image may be blurred and/or noisy and the goal of digital image restoration is to find an estimate of the original image. A fundamental issue in this process is the blur estimation. When the blur is not readily available, it has to be estimated from the observed image. Two main approaches can be found in the literature. The first one identify the blur parameters before any restoration whereas the second one realizes these two steps jointly. We present a comparative study of several parametric blur estimation methods, based on a parametric ARMA modeling of the image, belonging to the first approach. Our purpose is to evaluate the accuracy of the various methods, on which the restoration procedure relies, and their robustness to modeling assumptions, noise, and size of support
Keywords :
autoregressive moving average processes; image restoration; noise; parameter estimation; pattern recognition; accuracy; blur parameters identification; blurred image; comparative study; digital image restoration; image quality; modeling assumptions; noise robustness; noisy image; observed image; original image estimation; parametric ARMA modeling; parametric blur estimation methods; pattern recognition; support size; Convolution; Degradation; Digital images; Image analysis; Image restoration; Information analysis; Linear approximation; Noise robustness; Pattern analysis; Pattern recognition;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Acoustics, Speech, and Signal Processing, 1999. Proceedings., 1999 IEEE International Conference on
Conference_Location :
Phoenix, AZ
ISSN :
1520-6149
Print_ISBN :
0-7803-5041-3
Type :
conf
DOI :
10.1109/ICASSP.1999.757530
Filename :
757530
Link To Document :
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